MEng (Hons) Electronic and Electrical Engineering · Lancaster UniversityIntegrated Master's degree · 4 years
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Lancaster University · Undergraduate

MEng (Hons) Electronic and Electrical Engineering Integrated Master's degree at Lancaster University

MEng (Hons) Electronic and Electrical Engineering at Lancaster University. You'll study core theory, research methods, applied practice and specialist options, culminating in an independent project.

MEng (Hons)
Award
4
Years
Full-time
Study mode
86%
in work/study (15m)

About this course

Find out more about studying Electronic and Electrical Engineering MEng Hons (H606) at Lancaster University From the provider’s course page.

MEng (Hons) Electronic and Electrical Engineering is an Integrated Master's degree (MEng (Hons)) at Lancaster University, based in Bailrigg Campus, Lancaster. It runs 4 years, studied full-time.

For Engineering graduates from this provider, 86% were in work or further study 15 months after graduating, 91% in highly skilled roles, typical earnings around £33,000. (HESA Graduate Outcomes / LEO, via Discover Uni.)

For the typical curriculum, specialisations, career paths and graduate earnings for Engineering, see the sections below.

Course evidence score

The arithmetic mean of the official measures available for this course: NSS satisfaction, graduate activity and continuation.

7.9
/ 10
Strong
3 of 3 official measures
Student satisfaction
What students say in the National Student Survey
Strong76

Published threshold met NSS publication requires sufficient responses; small differences are not a rank. NSS mean of 7 published themes (Discover Uni snapshot 2026-06-21)

Graduate outcomes
In work or further study 15 months after graduating
Excellent86

Moderate evidence Published sample: 45; avoid reading small differences as meaningful. Cohort 2022-23. Graduate Outcomes work or further study 86% (2022-23; Discover Uni snapshot 2026-06-21)

Continuation
Students who continue past their first year
Strong75

Published threshold met Discover Uni suppresses continuation data below its publication threshold. Cohort 2022-23. Continuation 75% (2022-23; Discover Uni snapshot 2026-06-21)

Curriculum & modules

Real modules published for this course, grouped only where the source gives a year, stage or level.

Year 1 6 modules
  • Applied Engineering MathematicsCore
    Module details

    In this module you will strengthen your mathematical skills and apply them to important engineering problems. Theory is presented in the context of real engineering scenarios so that both the mathematical technique itself and the engineering concept are both better understood. This includes extending integration into higher dimensions, and introducing linear algebra, including vectors and matrices, which are applied to solving problems on structural mechanics and electronic networks, for example. Methods of approximating and solving non-linear functions are discussed in order to show how hard problems can be simplified. Laplace transforms are introduced which reduce the complexity of differe

  • Engineering ScienceCore
    Module details

    This module explores the core principles of engineering science, connecting key concepts to chemical, mechanical, nuclear, and electrical/electronic systems. You will discover how physical principles associated with energy transfer, forces, kinetics, and atomic behaviour shape the function of structures, processes, and components laying the foundation for all engineering disciplines. Topics include atomic and molecular behaviour in materials, charge movement, compound formation, and reaction kinetics. You will also examine forces from electrostatic, electromagnetic, and mechanical interactions, along with their effects on displacement, stress, current flow, and the behaviour of solids and fl

  • Engineering SkillsCore
    Module details

    This module will provide you with key practical skills that will allow you to design physical components, structures and systems and create functionality across all engineering disciplines. Whether you are a chemical engineer designing a heat exchanger, or a nuclear engineer designing a reactor, all engineers need to be able to generate and understand engineering drawings. Here you will use industry standard Computer Aided Design software to realise your designs. You will also learn the formal design process so that you can create innovative and robust designs. Using a ‘Design for Manufacture’ focus, you will learn how your designs can be manufactured from a range of subtractive, additive an

  • Engineering SystemsCore
    Module details

    This module bridges engineering science with real-world applications, enabling you to design and implement industrially relevant systems. One stream focuses on sensor technology, amplifier design, and "front-end" circuits. You’ll apply electronics theory to build practical circuits and networks, exploring operational amplifiers, key components of analogue systems. You'll also develop an understanding of signals in both the time and frequency domains. Systems within the field of chemical engineering will be explored where essential concepts including batch, semi-batch, and continuous processes, as well as purge and recycle streams are fundamental. You’ll perform material balance and phase equ

  • Engineering ThermofluidsCore
    Module details

    This module introduces thermodynamics, heat transfer, and fluid dynamics, core principles that drive engineering solutions across all disciplines. Understanding how heat and fluid behave is crucial for engineers tackling real-world challenges, from designing efficient thermal management systems and heat exchangers to optimizing industrial processes. You will explore the fundamental laws governing energy transfer and fluid flow, learning how these principles apply to practical engineering scenarios. In this module theoretical concepts are reinforced through experiments and observations. By directly engaging with real-world examples, you will develop a deep understanding of the mechanisms at p

  • Fundamental Engineering MathematicsCore
    Module details

    This module covers key analytical techniques providing a foundation for all engineering programmes. Whether you are already familiar with these concepts or not, this module will bring everyone to the same level and make sure you have the mathematical tools to succeed. Techniques of primary importance to engineering such as complex numbers, differentiation and integration are covered to ensure you can understand and apply all the different methods available and solve real engineering problems during the supported sessions and beyond. This analysis is supported by practical lessons in the use of numerical techniques using tools such as MATLAB. These tools are used not only to show how techniqu

Year 2 6 modules
  • Control and RoboticsCore
    Module details

    In this module, you will explore the fundamentals of control engineering and apply your knowledge to develop an autonomous robotic system in the laboratory. You will learn about system dynamics, feedback control and block diagram analysis, with a focus on linear, single-degree-of-freedom systems. Concepts will be illustrated through case studies from mechanical, electronic and robotic systems. The syllabus includes mechanistic modelling, first- and second-order systems, time and frequency responses (including Bode diagrams), transfer functions, classical control theory, and industry-standard PID control, incorporating proportional, integral, and derivative actions. You will also work as part

  • Digital Electronics and SoftwareCore
    Module details

    Discover how digital systems power the world around us. In this module, you will explore the essential building blocks of digital electronics, including logic gates, flip-flops and registers, and learn how to design and implement them using industry-standard hardware description languages like VHDL and Verilog. You'll also dive into CMOS inverter design and understand how noise margins and memory elements shape the performance of modern circuits. Through hands-on lab sessions, you will bring theory to life, building physical circuits and configuring FPGAs to test your designs. You will develop skills that are vital in fields like embedded systems, robotics and integrated circuit design. Along

  • Electrical Circuits and Analogue ElectronicsCore
    Module details

    In the first part of this module, you'll explore the fundamental components of electrical circuits and examine how they behave when connected in various configurations. You'll learn to analyse these circuits in both time and frequency domains using mathematical equations and computer simulations. Through a combination of assignments and hands-on projects, you'll deepen your theoretical understanding while improving your practical skills in electrical design. The second part of the module will introduce the principle of the most important solid-state devices, such as diodes and bipolar junction transistors. The main electronic circuit configurations at the foundation of modern electronic equi

  • Electromagnetism and CommunicationsCore
    Module details

    This module will explore electric and magnetic fields, and their influence on electromagnetic circuits and their relation to voltage and current. The module will cover capacitance and inductance as electromagnetic phenomena and will use this to calculate these for circuit components. This will build to electromagnetic waves, including antennas and transmission lines, which are fundamental building blocks of communication systems. This will be further expanded by looking at communication systems, starting with frequency domain analysis and building to modulation schemes. The students will develop electromagnetic simulation models, leading to the design, build and testing of a microstrip patch

  • Electronics Materials and ManufacturingCore
    Module details

    In this module, you will explore the decommissioning of nuclear facilities and the ultimate disposal of radioactive material. You will cover subjects and areas including a general introduction to the nuclear decommissioning market and related organisations, facility characterisation and final survey, the planning and costing of decommissioning projects, radiation issues, relevant aspects of health and safety, shielding, the use of Monte Carlo code in decommissioning, worker and environmental protection, demolition techniques and technologies, the use of robotics and automation in decommissioning, waste decontamination, packaging, transport and disposal, illustrative case studies of internati

  • Power EngineeringCore
    Module details

    In this module, you will explore the fundamental concepts of electrical machines, power electronic converters and power systems. You will dive into detailed studies on a range of DC and AC machines. This includes the operating principles and control methods of brushed DC motors, brushless DC motors and induction motors. It also covers power generation with synchronous generators and induction generators. Additionally, you will explore power electronic converters, focusing on their application in solar and wind energy systems, electric vehicles and industrial actuators. You will also learn about how electrical power systems work from generation to distribution, including traditional and smart

Year 3 5 modules
  • Digital Signal ProcessingCore
    Module details

    This module explores essential techniques for processing signals in digital systems. You’ll dive into the analogue to digital conversion process including sampling and quantisation, transforms,, digital filtering, signal synthesis, and error correction coding. A key focus is understanding discrete-time and frequency-domain signals, analysing them using MATLAB, and designing digital filters. Beyond theory, you’ll explore hardware implementation in digital CMOS circuits, together with software including power, speed and cost metrics. You’ll also explore datapath and memory design, system-level integration challenges, and the journey from design to implementation. Practical applications includ

  • Engineering Management and EntrepreneurshipCore
    Module details

    In this module, you will gain essential skills in engineering management, covering key areas such as scheduling, project risk management, quality management, and cost and resource management. You will also explore entrepreneurial topics, including business model generation, market segmentation, and effective communication of business proposals. At the heart of the module is a group business proposal, where you will apply management theory from lectures and entrepreneurial workshops. Through presentations, pitches, and valuable insights from industry experts, you will develop your business ideas with creativity, innovation, and an entrepreneurial mindset, focusing on idea generation, start-ups

  • Engineering ProjectCore
    Module details

    In this group project, you will collaborate within a multidisciplinary team to address a research problem, or a challenge defined by one of the School of Engineering’s industrial collaborators. Your group will conduct an in-depth investigation, combining theoretical research with practical solutions, drawing from your studies in preceding years. The project will often involve design, modelling, data analysis, and experimental work to verify your approaches, integrating engineering knowledge with management and leadership skills. You will be supported by a primary supervisor, along with additional guidance from other academic staff and technicians. The project comprises 400 learning hours per

  • High Frequency Circuit Engineering and CommunicationsCore
    Module details

    In this module, you will study a range of RF circuits and high frequency systems and components that find application in modern wired and wireless communications, with a focus on practical circuit design aspects. The module includes the most important antenna configurations, components for optical communication links, principles of information theory, signal modulation and access techniques, and security of wireless networks. Through a combination of lectures, tutorials and hands-on laboratory sessions, you will gain critical understanding of these technologies, their design approaches, and application in modern communications, including the latest advancements in 5G and emerging 6G.

  • Power Electronics and ApplicationsCore
    Module details

    This module introduces power electronic switching devices and their role in single-phase and three-phase converters and inverters. You'll learn to analyse power electronic circuits, calculate switching losses, and design snubbers and electricity grid stabilisers. You will also learn to design medium- and high-frequency transformers for isolated power converters. You'll also develop control systems and gate drivers for power electronic devices. Beyond theory, you'll explore real-world applications, including using converters and inverters to control motors and generators in industrial settings. You'll also see how these technologies drive green energy solutions, such as wind turbines and sola

Year 4 8 modules
  • Individual ProjectCore
    Module details

    In this individual project, you will deepen your understanding of a specific engineering topic of your choice. You will conduct a detailed review of the topic, which will serve as a foundation for enhancing the technical content of your project. Depending on the nature of your work, you may need to perform computer simulations, mathematical analyses, and/or practical experiments. You will be assigned a project supervisor who is an expert in your chosen field and will provide guidance on both the technical aspects and project management. Additionally, you will receive support from academic staff, postgraduate students, and technical personnel.

  • Industrial ConsultancyCore
    Module details

    Apply your knowledge and skills in a real-world context to an exciting industry-linked team project. You will explore the role of engineering consultancy in various industries, focusing on the skills, methodologies and practices involved in providing consultancy services to solve engineering-related problems. This will develop your understanding of industry needs, business requirements, stakeholder management and effective communication with clients. The module introduces the use of generative AI and prompt engineering as tools to support project management, problem-solving, and communication. You will consider the ethical implications of using AI in professional contexts, including issues r

  • Advanced Embedded SystemsOptional
    Module details

    In this module, you’ll explore the structure and operation of electric vehicles, with a focus on their electrical systems, including the energy source, energy conversion system, motor controllers, energy management system, and integration with the mechanical system. You'll delve into drive control, system design, and optimisation to enhance acceleration, braking, and stability that are key factors in ensuring the functionality and safety of electric vehicles. Additionally, you'll study the charging process and how electric vehicles interact with the electricity grid. Through a combination of assignments and group projects, you'll strengthen both your theoretical understanding and practical s

  • Advanced RF EngineeringOptional
    Module details

    In this module you will cover advanced RF components and techniques, focussing on impedance matching, RF filters and RF amplifiers at high frequencies. You will also focus on the use of transmission lines to replace discrete circuit components. Later, the module will cover RF measurements, and spectrum and network analysis theory and practice. You will build knowledge via microwave simulations, linking practicals to the course material and ultimately building and measuring a microstrip filter. On completion of the module you will have developed experience in the design of RF components.

  • Control and Machine LearningOptional
    Module details

    Explore key concepts in machine learning, intelligent control and modern control theory, with applications in robotics, industrial automation, smart manufacturing, predictive maintenance and digital twin. You will study control theory’s role in ensuring stability and robustness in safety-critical systems, beginning with classical proportional-integral control and progressing to digital control, state-space models and linear quadratic optimal control. Machine learning (ML) techniques, such supervised and unsupervised learning, reinforcement learning and deep neural networks, will be introduced to address complex, high-dimensional systems where traditional models fall short. The module also ex

  • Electric VehiclesOptional
    Module details

    In this module, you’ll explore the structure and operation of electric vehicles, with a focus on their electrical systems, including the energy source, energy conversion system, motor controllers, energy management system, and integration with the mechanical system. You'll delve into drive control, system design and optimisation to enhance acceleration, braking, and stability that are key factors in ensuring the functionality and safety of electric vehicles. Additionally, you'll study the charging process and how electric vehicles interact with the electricity grid. Through a combination of assignments and group projects, you'll strengthen both your theoretical understanding and practical sk

  • Electrical Power SystemsOptional
    Module details

    This module equips students with advanced skills in energy systems design and power network optimization for a sustainable future. You'll explore large-scale power grids and local microgrids, mastering key concepts essential to the evolving energy sector. Covering climate change mitigation, energy technology assessment, and economic analysis, the module blends power engineering principles with sustainable energy strategies. Hands-on experience with industry software will enhance your expertise in microgrid design, energy cost analysis, and power system simulation. You’ll develop critical skills in EROEI and LCOE calculations, power system stability, fault analysis, and network optimization w

  • Mechatronics and Control EngineeringOptional
    Module details

    Explore the core principles of mechatronics and control engineering, where you’ll learn dynamic modelling, actuator design and sensor technologies to tackle real-world challenges in automation, robotics and smart manufacturing. You’ll analyse and optimise systems using time and frequency domain methods, design robust actuators like electric, pneumatic and hydraulic systems, and integrate advanced sensors that measure pressure, temperature and electromagnetic fields. Gain hands-on experience with signal conditioning, combining hardware and software components, and developing closed-loop control systems for precision in industrial settings. Using tools like MATLAB/Simulink, you’ll simulate pro

Source: provider course page. Modules can change; required/optional status, credits, descriptions and assessment are shown only when explicitly published.

Course in depth

What this course covers, who it suits and where it leads.

What you'll study

You'll study electronic and electrical engineering through a foundation-to-specialism structure. Year 1 covers engineering mathematics, mechanics and materials, and practical design skills including CAD. Year 2 moves to circuits and systems, engineering analysis and computing, and a group design project reflecting industry practice. Years 3 and 4 introduce specialist options such as robotics and mechatronics, energy and sustainability, or a chartered (CEng) pathway, alongside professional engineering practice covering safety, ethics and sustainability. You'll complete a substantial individual project in your final year, which forms the degree's centrepiece. This is an integrated master's, so you'll progress through both undergraduate and postgraduate levels within the four years.

Who it's for

This course suits those with strong A-level qualifications or equivalent. Recent entrants typically held A-levels or equivalent, with a common UCAS tariff band of 144–159 points. You'll need genuine interest in electrical and electronic systems, problem-solving and practical application of engineering principles.

Careers & job market

Across Engineering courses nationally, 90% of graduates are in work or further study within 15 months. Of those working, 80% are in highly skilled roles or undertaking further study. National graduate earnings data shows starting salaries typically between £29,000 and £35,000 at 15 months; after five years, this ranges from £33,150 to £46,800. These figures reflect the broader graduate population, not a guarantee for individual outcomes.

University & format

This MEng (Hons) is delivered full-time over 4 years at Lancaster University, a public university founded in 1964 and located on Bailrigg Campus in Lancaster. The course is taught in English. As a degree from a recognised UK degree-awarding body, your MEng (Hons) qualification will be nationally recognised. Lancaster received a Silver award for teaching quality in the Office for Students' TEF 2023.

Student satisfaction

How students on this course answered the National Student Survey, by theme.

The teaching on my course
69%
Learning opportunities
70%
Assessment and feedback
69%
Academic Support
98%
Organisation and management
68%
Learning resources
91%
Student voice
69%

Share of students responding positively.

Published threshold met NSS publication requires sufficient responses; small differences are not a rank. NSS mean of 7 published themes (Discover Uni snapshot 2026-06-21)

Applicant information

The next application dates for this course, followed by facts the provider publishes.

Application timelineWhat happens next
  1. 2027 entryCompleted applications can be submitted

    Your application needs a reference before you can send it.

  2. 2026 entryFinal date for 2026 applications

    Applications must reach UCAS by 18:00 UK time.

  3. 2026 entryLast day to add a Clearing choice

    Check that this course still has a vacancy before adding it.

  4. 2027 entryEqual-consideration deadline

    18:00 UK time for most undergraduate courses.

Show 5 later dates
  1. 2027 entryUCAS Extra opens

    Applicants who used all five choices and hold no offer may be able to add another choice.

  2. 2027 entryLast day applications go directly to providers

    Applications received after 18:00 UK time are entered into Clearing.

  3. 2027 entryClearing opens

    Eligible applicants can see vacancies and release themselves into Clearing.

  4. 2027 entryFinal date for 2027 applications

    Applications must reach UCAS by 18:00 UK time.

  5. 2027 entryLast day to add a Clearing choice

    Check that this course still has a vacancy before adding it.

Published entryAAA typical offer

Provider-published requirement; check the linked course page before applying.

AccreditationIET

Names detected beside accreditation or recognition copy on the provider course page; verify the route and intake.

PlacementPublished placement option

Placement year. Availability, selection and pay can vary.

Open daysOpen days and tours

See and book current events. Dates can fill or change.

Entry & how to get in

Typical offer (from the provider)The university’s course page lists a typical A-level offer of AAA. Always check the provider for the current offer and subject requirements.
Most entrants held A-levels or equivalent100% of accepted students came in with A-levels or equivalent (entrants over recent years).
Typical UCAS tariff: 144 - 159 pointsThe most common UCAS tariff band among accepted students. This is what entrants had, not a stated requirement.
Entry requirements are set by the universityGrades, subjects and contextual offers vary. Check Lancaster University's official course page for the current offer.

Who gets in

What recently admitted students actually held, official admissions data, not a stated requirement.

UCAS tariff of entrants

Grades are the A-level equivalent of each points band. Tap a band to check your own chances below.

Qualifications held on entry

QualificationShare
A-levels or equivalent100%

Entry & your chances

An honest read from the official entry data, plus your personal match.

Competitive entry

Accepted students typically held strong UCAS tariffs. Check how your predicted grades compare and whether a contextual offer applies.

Will you get in? Plot your grades

Pick your predicted A-levels and watch your UCAS points land on the real spread of students admitted to this course.

Each bar is the share of admitted students in that UCAS-points band (lower → higher). Grades show the A-level equivalent.

Add your grades to see where you land

Your points will drop onto the distribution above, with an honest above / within / below read.

Based on the official admitted-student tariff distribution. Many universities make contextual (reduced-grade) offers, so a result below the range doesn’t rule you out.

How to apply

Undergraduate applications go through UCAS. Here’s what matters for this course, the right deadline, the grades to aim for, and the steps in order.

Apply by13 January 2027, 18:00 UK timefor this course
Typical gradesA*AAA-level equivalent admitted students held
UCAS codeH606quote this on your application
  1. 1
    Register on UCAS Hub

    Create your UCAS application and add this course (code H606). One application covers up to five choices.

  2. 2
    Write your personal statement

    A single statement covers all your choices, so keep it broad enough for similar courses while showing genuine interest in this subject.

  3. 3
    Submit by 13 January 2027, 18:00 UK time

    UCAS equal-consideration deadline for most undergraduate courses. Source: UCAS 2027 dates.

  4. 4
    Reply to your offers

    When decisions are in, pick a firm (first) choice and an insurance (back-up) choice with slightly lower grades.

  5. 5
    Results day & confirmation

    On results day (mid-August) your place is confirmed if you meet the offer. Just missed? Talk to the university, or find a place through Clearing.

💡 Many universities make a contextual (reduced-grade) offer, for example based on your school’s results, time in care, or where you live. Ask Lancaster University whether you’re eligible before you apply; it can lower the grades you need.

Fees & funding

What this course costs and how UK student finance covers it.

Tuition per year

Homeup to £9,790 / yr
International£33,000 / yr

Provider fee page (England 2026/27 cap where not stated).

Check fees at Lancaster University →

For students who normally live in England

illustrative Maintenance Loan per year
£9,790tuition used per year, illustrative full-time England fee-cap scenario
illustrative borrowing over 4 years

2026/27 Student Finance England figures. Maintenance support is means-tested and this two-point view is not an entitlement calculator. The course total uses its published length and home fee where both are available; a missing full-time fee uses the clearly labelled England-cap scenario, while part-time fees and unknown lengths are never guessed. Use the official calculator. Scotland, Wales and Northern Ireland use separate systems: SAAS, Student Finance Wales, and Student Finance NI.

Starting on or after 1 January 2027?

The Lifelong Learning Entitlement is a separate system. A new learner’s tuition entitlement is currently stated as £39,160 (about 480 credits at 2026/27 fee levels), subject to prior study and eligibility. Check the official LLE guide.

Paying for it

  • Tuition Fee Loan: can cover eligible tuition up to the applicable limit and is paid straight to the provider.
  • Maintenance Loan: up to £10,830/yr away from home outside London (England, 2026/27), means-tested on household income.
  • Repayment: 9% of income above £25,000, nothing below it; written off after 40 years.
  • Earn alongside: most students work part-time in term, part-time roles on the StudySmarter job board.

England figures shown; Scotland, Wales & NI run their own schemes, check gov.uk.

Funding matched to this course

Scholarships & bursaries you could qualify for

All Lancaster University funding →
No verified named award is shown for this provider yet.

That does not mean no funding exists. Check the university directory for current amounts, eligibility and application dates.

We only display a named award when its provider source identifies the award and who it is for.

StudyKit · free

Still deciding what to study?

StudyKit brings course choice, applications and funding together in one place, with a personal AI assistant. Find what really fits you and start your UCAS application step by step.

Career quizApplication walkthroughSalary & CV check

Careers & earnings

What Engineering graduates actually earn, from real outcome data, 15 months, 3 years and 5 years after graduating.

Graduate earnings: this course

WhenMedianTypical rangeGraduates
15 months after£33,000£30,000 – £35,00045
3 years after£32,000£25,000 – £36,500105
5 years after£40,000£33,000 – £46,500110

Nominal earnings for graduates of this course/subject at this provider. Moderate evidence. Published sample: 45; avoid reading small differences as meaningful. Cohort 2022-23.

Graduate outcomes, 15 months on: this course

86%
in work or further study 15 months on
91%
in highly skilled work or study
75%
continue past their first year
85%
find their work meaningful
80%
say work fits their future plans
  1. 1Graduate roleFirst role after the degree · 0–2 yrs
  2. 2Specialist / PractitionerWorking in engineering · 2–5 yrs
  3. 3Senior / LeadLeading work and people · 5–10 yrs
  4. 4Head of / ExpertSenior leadership or deep expertise · 10+ yrs

How pay grows: this course vs Engineering nationally

Starting (15 months) HESA GO
£33,000
£29,000 – £35,000
After 3 years LEO
£32,000
£26,775 – £37,800
After 5 years LEO
£40,000
£33,150 – £46,800
national rangethis course’s medianaxis £25,000 – £48,500

National figures for Engineering graduates, HESA Graduate Outcomes (15 months) and the Longitudinal Education Outcomes (LEO) dataset (3 & 5 years). These are national, not university-specific; actual pay varies by employer, region, role and experience. Different cohorts, so the bars are not one group over time.

Work out your pay

Headline figures hide a lot. Calculate realistic take-home pay for this field by role, region and experience, then check your CV before you apply.

What happened to 100 students?

Choose an outcome to translate the published percentage into a simple 100-person view. Each dot represents one percentage point, not an individual tracked student.

86 of 100

were in work or further study

15 months after graduation

67% working9% working and studying9% in further study91% in highly skilled work or study

Source: Discover Uni, using Graduate Outcomes and continuation data. Cohorts: 2022-23. Moderate evidence. Published sample: 45; avoid reading small differences as meaningful. Cohort 2022-23. Each tab is a separate published measure; categories can overlap and should not be added together.

Value compared with similar courses

How this course’s 5-year median earnings compare with Engineering courses at the same study level.

This course £40,000Peer median £38,500Middle 50% £35,500–£42,500
58th percentile

Compared with 2,256 courses with compatible official earnings data. This is a course-value comparison, not a quality ranking.

UK occupations graduates enter

Published graduate destinations, joined conservatively to UK SOC 2020, ONS pay and Skills England demand.

  • Engineering professionalsSOC 2020 212 · 72% of published destinations · ASHE median £50,325
  • Information Technology ProfessionalsSOC 2020 213 · 10% of published destinations · ASHE median £55,357

Discover Uni JOBLIST/JOBTYPE; ONS ASHE 2025 provisional, all employee jobs; Skills England Occupations in Demand 2025. SOC is shown only for an exact normalised label match; demand is shown only at exact four-digit SOC. Published sample: 120; response rate: 71%. Pay describes the occupation across workers, not a guaranteed graduate salary.

Job market & outlook

How Engineering graduates fare in the labour market, and how AI is reshaping the work.

90%
in work or further study 15 months after graduating, across Engineering courses nationally.
Graduate Outcomes
80%
of working graduates are in highly skilled work or further study.
highly skilled
88%
of students continue past their first year (still enrolled or completed).
continuation

How AI is changing the work

AI doesn't replace the profession, it shifts it: routine tasks get automated, while judgement, working with people and using AI well become more valuable.

What AI takes off your plate

  • Routine information gathering
  • First-draft writing and summaries
  • Standard analysis and admin
  • Repetitive processing tasks

More human than ever

  • Judgement and original thinking
  • Working with and leading people
  • Owning and sense-checking AI output
  • Ethics and accountability

The strongest graduates pair subject depth with the ability to use AI tools critically.

Roles & employers

Where Engineering graduates typically go, indicative destinations from graduate career data. Each role links to live openings on the StudySmarter job board.

Where they work

  • Engineering & manufacturing firms
  • Automotive & aerospace
  • Energy & utilities
  • Defence & consultancies

Is this course right for you?

The essentials UK applicants ask about: finance, outcomes, entry and quality.

💷

Student finance

For comparison, the standard full-time England tuition cap is up to £9,790 per year in 2026/27; the actual fee varies by course and provider. If you normally live in England, eligible students can apply for a Tuition Fee Loan, plus a Maintenance Loan for living costs. Under Plan 5 you repay 9% of income above £25,000, nothing below that, and the balance is written off after 40 years.

📈

Where graduates go

86% were in work or further study 15 months after graduating, with a median salary of £33,000. See the full breakdown in Careers & earnings above.

🎯

Your entry chances

Use the UCAS points calculator above to see how your predicted grades compare with admitted students, and whether a contextual offer could apply.

Official-data snapshot

Averaging the official measures published for it, this course scores 7.9 out of 10: NSS 76.3% · in work or study 86% · continued 75%.

Who studies here and in this subject?

Provider- and UK subject-level context.

The University of Lancaster

All students18,620
International22.4%
Aged 25+16.7%

Engineering and technology across the UK

Students176,530
Aged 25+23%

HESA student record 2024/25. Counts are rounded.

Local crime-data context

A neutral snapshot around the published teaching location.

Around Bailrigg Campus, Lancaster

28 street-level reports returned within roughly one mile across 2026-04 to 2026-06.

Other Theft 9Violent Crime 4Bicycle Theft 3Anti Social Behaviour 2Burglary 2

Police.uk street-level API. Approximate locations, not confined to campus. England, Wales and Northern Ireland; not Scotland.

Is Engineering right for you?

Tick what applies to you and see how good a fit it is.

International students

What applying to Lancaster University from outside the UK involves: fees, English, visa, funding and living costs.

Tuition fees

International tuition is £33,000 / year for this course (from the provider’s fee page). You’re not eligible for UK Tuition Fee or Maintenance Loans, so plan for fees plus living costs upfront.

English language

Most UK undergraduate courses ask for around IELTS 6.0–6.5 (no band below 5.5–6.0), or an accepted equivalent. If you’re just short, most universities run a pre-sessional English course that counts towards the requirement.

Student visa

You’ll usually need a Student visa (Student Route). After you accept an offer the university issues a CAS; you then show funds for fees plus about £1,023–£1,334/month living costs and pay the Immigration Health Surcharge for NHS access.

Scholarships & funding

Many universities offer international/global scholarships (often £2,000–£6,000/yr), check Lancaster University’s funding pages.

Living costs

Budget roughly £1,100–£1,400/month outside London and £1,400–£1,800/month in London for rent, food and travel; the figure also matters for your visa.

Working while you study

A Student visa usually allows up to 20 hours/week in term time and full-time in holidays, useful alongside study, though not something to rely on for fees.

Visa rules and fees change. Always confirm the current requirements with Lancaster University and gov.uk before you apply.

Common questions

Entry is competitive. Accepted students typically held strong UCAS tariffs. The most common tariff band among recent entrants was 144 - 159 UCAS points. Use the calculator on this page to see where your predicted grades would put you; many universities also make lower contextual offers.
Set by Lancaster University. Most accepted students held A-levels or equivalent. Check the university's course page for the exact offer.
For Engineering graduates from this provider, 86% were in work or further study 15 months after graduating, 91% in highly skilled roles, typical earnings around £33,000. (HESA Graduate Outcomes / LEO, via Discover Uni.)
For comparison, the standard full-time England tuition cap is up to £9,790 per year in 2026/27; the actual fee varies by course and provider. If you normally live in England, eligible students can apply for a Tuition Fee Loan, plus a Maintenance Loan for living costs. Under Plan 5 you repay 9% of income above £25,000, nothing below that, and the balance is written off after 40 years. See Fees & funding on this page to work out your numbers.
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