ML/AI Research Scientist in London

ML/AI Research Scientist in London

London Full-Time 60000 - 80000 £ / year (est.) No home office possible
Engitix Therapeutics

At a Glance

  • Tasks: Lead the design and development of AI/ML models for proteomics analysis.
  • Company: Engitix Therapeutics, a pioneering biotech firm in London.
  • Benefits: Autonomy in research, collaborative environment, and state-of-the-art facilities.
  • Other info: Opportunity to shape the future of AI in biology.
  • Why this job: Make a real impact on drug discovery for fibrosis and cancer.
  • Qualifications: PhD in ML or related field with strong publication record.

The predicted salary is between 60000 - 80000 £ per year.

Your mission is to unlock the extracellular matrix (ECM) as a source of novel therapeutic targets for fibrosis and cancer. Our proprietary platform integrates proteomics and transcriptomics data on patient tissue samples with rich clinical metadata to identify and validate targets in the tumour microenvironment and fibrotic tissue.

We are working to build a first-of-its-kind AI/ML capability to transform how we extract biological insight from complex proteomic data, focusing on developing foundation models for mass spectrometry that go beyond existing analytical pipelines.

This will be a founding role in Engitix’s AI/ML research programme. You will take a leading role in the design and development of foundational models for proteomics analysis. This will involve developing novel architectures seeking to map and make use of approximately 60–70% of current proteomics data that remains unexplained. Success will build representations that dramatically improve peptide identification, quantification, and discovery of novel biology. There will also be ample opportunity to work on problems outside the proteomics domain if interested.

Your responsibilities:

  • Lead the research, design, and implementation of foundational models for mass spectrometry data analysis, focused on proteomics.
  • Test and optimize performance on small and large-scale training datasets from public spectral repositories and internal Engitix data.
  • Benchmark against state-of-the-art tools (DIA-NN, Spectronaut, MSFragger-DIA, MaxDIA).
  • Design active learning and experimental design strategies that close the loop between model predictions and wet-lab validation.
  • Publish at top-tier venues (NeurIPS, ICML, ICLR) and contribute to the open scientific community.
  • Shape the long-term AI/ML research roadmap at Engitix.

Your profile:

You might be finishing a PhD or postdoc at a top ML or computational biology group. You might be 2–7 years into an industry research role and looking for something more impactful and autonomous. You might be a generative modelling expert who’s never touched biology but is excited by the idea of building a foundation model for a new data modality. Or you might be a computational biologist who’s been publishing at NeurIPS and wants to apply your skills to a real drug discovery programme. What matters most is that you are an excellent ML researcher with a track record of rigorous, published work, and that you are genuinely motivated by the opportunity to build something new at the intersection of deep learning and biology.

Required:

  • PhD in machine learning, computer science, computational biology, statistics, physics, or a related quantitative field.
  • Strong publication record at top-tier ML conferences (NeurIPS, ICML, ICLR) and/or leading scientific journals (Nature, Nature Methods, Nature Biotechnology, Nature Machine Intelligence).
  • Deep expertise in at least one of: self-supervised learning, transformer architectures, attention mechanisms, generative models (diffusion, flow matching, VAEs), representation learning, object-centric learning.
  • Strong implementation skills in PyTorch (or JAX); experience training models on GPUs at scale.
  • Genuine intellectual curiosity about biological data and a desire to work at the interface of ML, biology, and therapeutics discovery.

Nice to have:

  • Experience with mass spectrometry data (proteomics, metabolomics, or small-molecule MS/MS).
  • Familiarity with computational proteomics pipelines (DIA-NN, Prosit, Spectronaut, Percolator, or similar).
  • Experience building foundation models or large-scale self-supervised pretraining systems.
  • Background in spectral data, signal processing, or time-series modelling.
  • Understanding of protein biology, sequence models (ESM, MSA Transformer), or structural biology.
  • Experience with multi-modal or cross-modal learning (e.g., contrastive learning across modalities).
  • Track record of bridging ML research with real-world biological or clinical applications.
  • Exposure to drug discovery, single-cell or spatial transcriptomics data.

Why us?

  • The chance to build something genuinely new and exciting.
  • A role with significant autonomy to shape the research direction and team.
  • Goal of publishing and maintaining an active presence in the ML research community.
  • Direct impact on therapeutic programmes in fibrosis and cancer.
  • A collaborative, scientifically rigorous environment where ML research is taken seriously.
  • London-based state-of-the-art facilities.

Engitix is a growing biotech company based in White City Place, West London. We are dedicated to developing better therapies for advanced fibrosis and solid tumours by leveraging our pioneering extracellular matrix (ECM) platform. Our platform allows the synthesis of realistic in vitro 3D models that serve as tools to transform our ability to identify new targets and biomarkers, determine mechanisms of action and more accurately predict the efficacy of therapeutic candidates. Join us today in our mission to create a healthier future for patients with life-threatening diseases such as fibrosis and cancer.

ML/AI Research Scientist in London employer: Engitix Therapeutics

Engitix Therapeutics is an exceptional employer, offering a unique opportunity to be at the forefront of AI/ML research in the biotechnology sector. With a collaborative and scientifically rigorous work culture, employees enjoy significant autonomy in shaping research directions while contributing directly to impactful therapeutic programmes. Located in the vibrant White City Place, West London, Engitix provides state-of-the-art facilities and a commitment to employee growth through active participation in the ML research community.
Engitix Therapeutics

Contact Detail:

Engitix Therapeutics Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land ML/AI Research Scientist in London

✨Tip Number 1

Network like a pro! Reach out to people in the industry, attend meetups, and connect with researchers on LinkedIn. You never know who might have the inside scoop on job openings or can put in a good word for you.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, especially those related to ML/AI and proteomics. This will give potential employers a taste of what you can do and set you apart from the crowd.

✨Tip Number 3

Prepare for interviews by brushing up on your technical knowledge and problem-solving skills. Practice explaining complex concepts in simple terms, as you'll likely need to communicate your ideas clearly to non-experts.

✨Tip Number 4

Don't forget to apply through our website! We love seeing passionate candidates who are eager to join our mission at Engitix. Make sure to tailor your application to highlight how your skills align with our goals.

We think you need these skills to ace ML/AI Research Scientist in London

Machine Learning
Deep Learning
Self-Supervised Learning
Transformer Architectures
Attention Mechanisms
Generative Models
Representation Learning
Object-Centric Learning
PyTorch
JAX
Mass Spectrometry Data Analysis
Computational Proteomics
Signal Processing
Biological Data Analysis
Publication in Top-Tier ML Conferences

Some tips for your application 🫡

Show Your Passion for ML and Biology: When writing your application, let us see your genuine excitement for the intersection of machine learning and biology. Share any relevant projects or experiences that highlight your passion and how you can contribute to our mission at Engitix.

Tailor Your CV and Cover Letter: Make sure to customise your CV and cover letter to reflect the specific skills and experiences mentioned in the job description. Highlight your strong publication record and any relevant expertise in proteomics or mass spectrometry data.

Be Clear and Concise: Keep your application clear and to the point. Use straightforward language to describe your achievements and skills, making it easy for us to see why you’re a great fit for the role. Avoid jargon unless it's necessary!

Apply Through Our Website: We encourage you to apply directly through our website. This ensures your application gets to the right place and allows us to process it efficiently. Plus, it shows you're keen on joining our team!

How to prepare for a job interview at Engitix Therapeutics

✨Know Your Stuff

Make sure you brush up on the latest in machine learning and computational biology. Familiarise yourself with foundational models, self-supervised learning, and the specific tools mentioned in the job description like DIA-NN and Spectronaut. Being able to discuss these topics confidently will show your genuine interest and expertise.

✨Show Your Passion for Biology

Engitix is looking for someone who is genuinely curious about biological data. Be prepared to discuss why you want to work at the intersection of ML and biology. Share any relevant experiences or projects that highlight your enthusiasm for therapeutic discovery and how it can impact patients.

✨Prepare for Technical Questions

Expect to dive deep into technical discussions during your interview. Brush up on your implementation skills in PyTorch or JAX, and be ready to explain your past projects, especially those involving large-scale training datasets. Practising coding problems related to model optimisation could also give you an edge.

✨Think About the Future

Engitix wants someone who can shape their AI/ML research roadmap. Come prepared with ideas on how you would approach building foundational models for proteomics analysis. Discuss potential challenges and how you would tackle them, showing that you’re not just a researcher but a visionary ready to contribute to their mission.

ML/AI Research Scientist in London
Engitix Therapeutics
Location: London

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