Snr/Principal Machine Learning Scientist – Generative Modelling in London
Snr/Principal Machine Learning Scientist – Generative Modelling

Snr/Principal Machine Learning Scientist – Generative Modelling in London

London Full-Time 70000 - 90000 £ / year (est.) No home office possible
Relation

At a Glance

  • Tasks: Design and implement generative models to understand cellular behaviour and drive innovative therapies.
  • Company: Join a pioneering TechBio company transforming medicine through cutting-edge technology.
  • Benefits: Competitive salary, inclusive culture, and opportunities for professional growth.
  • Other info: Collaborative environment with diverse teams and excellent career advancement opportunities.
  • Why this job: Make a real impact in drug discovery and help patients with groundbreaking research.
  • Qualifications: PhD in ML or related field, expertise in generative modelling, and strong Python skills.

The predicted salary is between 70000 - 90000 £ per year.

Overview

Relation is a sector defining TechBio company developing transformational medicines, with technology at our core. Our ambition is to understand human biology in unprecedented ways, discovering therapies to treat some of life’s most devastating diseases. We leverage single-cell multi-omics from patient tissue, functional assays, and machine learning to drive disease understanding, from cause to cure.

We are scaling rapidly and building a team of exceptional individuals to push the boundaries of drug discovery. You will work in highly interdisciplinary teams where biology, computation, and engineering come together to solve complex problems that have not been solved before. Our state-of-the-art wet and dry labs in the heart of London are designed to accelerate this integration and translate insight into impact.

We are committed to building diverse and inclusive teams. Relation is an equal opportunities employer and does not discriminate on the basis of gender, sexual orientation, marital or civil partnership status, gender reassignment, race, colour, nationality, ethnic or national origin, religion or belief, disability, or age. By joining Relation, you will help define how medicines are discovered and deliver meaningful impact for patients.

The Opportunity

Relation is offering an outstanding opportunity for a Machine Learning Scientist to help build the next generation of generative and predictive models of cellular behaviour. Your work will be central to our mission to understand and control cellular decision-making, enabling novel therapeutic strategies grounded in generative models.

You'll be joining a team with access to cutting-edge multiomic and interventional datasets, advanced computational infrastructure, and deep interdisciplinary expertise. We embrace modern ML tooling, including agentic workflows, to accelerate the pace of research iteration. This is an opportunity to push the boundaries of what generative modelling can achieve in complex, high-dimensional, and noisy real-world systems, and to see your work tested directly in experimental biology.

Day to day

  • Design and implement generative modelling approaches that learn intervention effects from diverse biological data, including single-cell perturbation experiments.
  • Develop models that go beyond correlation, focusing on generalisation, counterfactual prediction, and experimental design.
  • Collaborate with experimental teams to design and validate computational hypotheses via iterative strategies that identify the highest-signal next experiment.
  • Evaluate models not just for fit, but for causal coherence, mechanistic fidelity, and utility in guiding real-world interventions.
  • Communicate findings clearly across disciplinary boundaries, and contribute to high-impact publications.

Qualifications

  • PhD in ML, statistics, computer science, or a related quantitative field.
  • Deep expertise in generative modelling.
  • Strong foundations in probabilistic modelling, representation learning, or neural network architectures for structured or sequential data.
  • Excellence in Python and familiarity with scalable ML tooling and high-performance computing.
  • A disciplined approach to model evaluation, with experience designing experiments that go beyond standard benchmarks to test real-world utility.
  • Willingness and ability to engage deeply with biological data; prior experience with single-cell or perturbational datasets is a strong plus.

Bonus experience

  • Track record of impactful publications or open-source contributions in ML.
  • Experience working in interdisciplinary teams or applying ML in real-world settings.

Personally, you

  • Are comfortable working in a matrixed environment, balancing multiple stakeholders and contributing effectively across teams.
  • Take ownership of your work, proactively seek opportunities to contribute, and enable others to do their best work.
  • Communicate openly and directly, give and receive feedback constructively, and handle challenging conversations with respect.
  • Actively seek out diverse perspectives, build strong working relationships, and contribute to shared goals across teams.
  • Embrace challenges with openness and resilience, set high standards for yourself, and strive to deliver meaningful outcomes.

Working Style & Culture at Relation

At Relation, we operate in a matrixed, interdisciplinary environment, where impact is driven through collaboration across scientific, technical, and operational domains. We collaborate, and you will partner with colleagues across multiple teams and projects, contributing your expertise while aligning to shared company priorities. We work together and win together! The patient is waiting!

Recruitment Agencies

Please note that Relation does not accept unsolicited resumes from agencies. Resumes should not be forwarded to our job aliases or employees. Relation will not be liable for any fees associated with unsolicited CVs. Relation is a committed equal opportunities employer.

Snr/Principal Machine Learning Scientist – Generative Modelling in London employer: Relation

Relation is an exceptional employer at the forefront of TechBio innovation, offering a dynamic work environment in the heart of London. With a strong commitment to diversity and inclusion, we foster a collaborative culture that empowers employees to push the boundaries of drug discovery while providing access to cutting-edge technology and interdisciplinary expertise. Joining our team means engaging in meaningful work that directly impacts patient outcomes, with ample opportunities for professional growth and development.
Relation

Contact Detail:

Relation Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Snr/Principal Machine Learning Scientist – Generative Modelling in London

Tip Number 1

Network like a pro! Reach out to people in the industry, especially those at Relation or similar companies. A friendly chat can open doors that a CV just can't.

Tip Number 2

Show off your skills! Prepare a portfolio or a project that highlights your expertise in generative modelling. This is your chance to demonstrate what you can bring to the table beyond the application.

Tip Number 3

Get ready for interviews by brushing up on your communication skills. Practice explaining complex concepts in simple terms, as you'll need to collaborate with diverse teams at Relation.

Tip Number 4

Apply through our website! It’s the best way to ensure your application gets seen. Plus, it shows you're genuinely interested in being part of the team at Relation.

We think you need these skills to ace Snr/Principal Machine Learning Scientist – Generative Modelling in London

Generative Modelling
Machine Learning
Probabilistic Modelling
Representation Learning
Neural Network Architectures
Python
Scalable ML Tooling
High-Performance Computing
Model Evaluation
Experimental Design
Single-Cell Data Analysis
Interdisciplinary Collaboration
Communication Skills
Publication in ML

Some tips for your application 🫡

Tailor Your Application: Make sure to customise your CV and cover letter for the role. Highlight your experience in generative modelling and any relevant projects that showcase your skills. We want to see how you fit into our mission!

Showcase Your Expertise: Don’t hold back on your technical skills! Detail your proficiency in Python and any ML tooling you've used. If you've worked with single-cell data or have publications, make sure to mention them. This is your chance to shine!

Communicate Clearly: When writing your application, keep it clear and concise. Use straightforward language to explain complex concepts. Remember, we value communication across disciplines, so show us you can bridge those gaps!

Apply Through Our Website: We encourage you to apply directly through our website. It’s the best way to ensure your application gets the attention it deserves. Plus, it shows us you're serious about joining our team!

How to prepare for a job interview at Relation

Know Your Generative Modelling Inside Out

Make sure you brush up on your knowledge of generative modelling techniques. Be prepared to discuss your previous work in this area, especially any projects that involved complex datasets or real-world applications. This will show your depth of understanding and how you can contribute to their mission.

Showcase Your Interdisciplinary Collaboration Skills

Since the role involves working with diverse teams, think of examples where you've successfully collaborated across disciplines. Highlight how you communicated complex ideas to non-experts and how you contributed to shared goals. This will demonstrate your ability to thrive in their matrixed environment.

Prepare for Technical Questions

Expect technical questions related to Python, probabilistic modelling, and model evaluation. Brush up on your coding skills and be ready to solve problems on the spot. Practising common ML scenarios can help you feel more confident during the interview.

Communicate Clearly and Confidently

During the interview, focus on clear communication. Practice explaining your findings and methodologies in a way that's accessible to those outside your field. This will not only showcase your expertise but also your ability to bridge gaps between biology and computation.

Snr/Principal Machine Learning Scientist – Generative Modelling in London
Relation
Location: London

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