Principal/Senior Data Scientist

Principal/Senior Data Scientist

Full-Time 44700 - 63800 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Lead transformative projects in computational biology and AI, integrating cutting-edge technologies.
  • Company: Join a pioneering team at the Wellcome Sanger Institute, focused on innovative research.
  • Benefits: Competitive salary, hybrid working, and opportunities for professional growth.
  • Why this job: Make a real impact in healthcare by developing AI tools for understanding cellular systems.
  • Qualifications: MSc/PhD in relevant fields and experience in machine learning and data science.
  • Other info: Diverse and inclusive environment with strong support networks for all employees.

The predicted salary is between 44700 - 63800 £ per year.

We are hiring a Senior Data Scientist/Principal Data Scientist to join our interdisciplinary team at the forefront of computational biology and AI for a 2 year fixed term contract. You will contribute to transformative projects that integrate single-cell genomics, spatial transcriptomics, and generative AI to build next-generation models for understanding tissue biology and cellular dynamics across organs such as the pancreas, kidney, skin, and liver.

Available Research Focus Areas:

  • Spatial & Multi-omics Atlas Construction: Build large-scale spatial and single-cell atlases across diseased tissues (pancreas, kidney, skin, liver) using spatial transcriptomics, scRNA-seq, and multiome data in collaboration with leading Sanger groups.
  • Generative AI for Cell Fate & Perturbations: Develop diffusion, flow-matching, and transformer-based generative models to predict cell fate, tissue remodelling, and drug or perturbation responses in silico.
  • Foundational Models for Single-Cell Biology: Train large, generalizable deep models across public and internal datasets to support the Human Cell Atlas and broad Sanger research programs.
  • Open Targets Translational AI Projects: Apply foundational and multi-omics models to real-world challenges in drug discovery, target identification, and target safety in collaboration with major pharma partners.
  • Agentic AI for Scientific Reasoning & Experiment Design: Develop AI agents capable of hypothesis generation, experiment planning, and multi-step scientific workflows using reinforcement learning and tool-use models.
  • Core Machine Learning Research: Advance fundamental ML methods—including advanced generative modelling, scalable training algorithms, representation learning, and uncertainty modelling—tailored for biological data.
  • Multimodal Learning (Imaging + Genomics + Clinical Data): Create models that integrate histopathology imaging, spatial proteomics, single-cell genomics, and patient-level clinical data to learn unified biological and clinical representations.
  • Leap Project: We are interested in developing large-scale AI models to stratify patients using diverse multi-omics data, with a strong commitment to equity and inclusion, particularly in women’s health.

You will join an interdisciplinary team of ML researchers, computational biologists, clinicians and experimentalists. Our mission is to develop data-driven and biologically grounded AI tools for decoding complex cellular systems. We collaborate closely with the Human Cell Atlas, Sanger's single-cell programs, and international leaders in the field.

Key Publications And References:

  • Akbar Nejat et al., Mapping and reprogramming human tissue microenvironments with MintFlow (bioRxiv, 2025)
  • Birk et al., Quantitative characterization of cell niches in spatially resolved omics data, Nature Genetics (2025)
  • Jeong et al., SIGMMA: Hierarchical Graph-Based Multi-Scale Multi-modal Contrastive Alignment of Histopathology Image and Spatial Transcriptome (arXiv, 2025)
  • Sanian et al., 3D-Guided Scalable Flow Matching for Generating Volumetric Tissue Spatial Transcriptomics from Serial Histology (arXiv, 2025)

About you:

We welcome applications from diverse technical and scientific backgrounds — from those interested in fundamental questions in biology and medicine, to those focused on ML/AI method development. We are particularly excited to work with individuals who are passionate about biology, foundation model development, modelling cellular perturbation responses, predicting patient behaviours, and analysing multi-modal biological data.

Essential Skills:

  • MSc and/or Ph.D. or equivalent experience in a relevant quantitative discipline (e.g., Computer Science, Computational Biology, Genetics, Bioinformatics, Physics, Engineering, or Applied Statistics/Mathematics).
  • Proven experience using advanced statistical techniques, machine learning, and modern deep learning techniques.
  • Previous ML work experience in scientific/academic environment (RA/Internships are considered as work experience).
  • Strong knowledge of Python, including core data science libraries such as Scikit-Learn, SciPy, TensorFlow, and PyTorch.
  • Knowledge of software development good practices and collaboration tools, including git-based version control, python package management, and code reviews.
  • Excellent communication skills, with the ability to explain complex machine learning algorithms and statistical methods to non-technical stakeholders.
  • Experience working with cloud environments and tools, such as Amazon AWS S3, EC2, etc.
  • Evidence of related work experience as a researcher in the area of Machine learning.
  • Strong publication record.
  • Ability to quickly understand scientific, technical, and process challenges and breakdown complex problems into actionable steps.
  • Ability to work in a frequently changing environment with the capability to interpret management information to amend plans.
  • Ability to prioritize, manage workload, and deliver agreed activities consistently on time.
  • Demonstrate good networking, influencing and relationship building skills.
  • Strategic thinking is the ability to see the ‘bigger picture.
  • Ability to build collaborative working relationships with internal and external stakeholders at all levels.
  • Demonstrates inclusivity and respect for all.

Additional essential skills for the Principal Data Scientist:

  • Experience in supervision (PhD students and Postdoctoral Fellows).
  • Experience in writing manuscripts for publication.
  • Experience working with cloud environments and tools, such as Amazon AWS S3, EC2, etc.
  • Relevant solid publication record in either machine learning or application of machine learning in biology.

Application Process:

Please submit your CV and a cover letter detailing your research experience, interest in the focus area(s), and future aspirations.

Salary per annum (dependent upon skills and experience):

  • Principal Data Scientist: £53,717-£63,815
  • Senior Data Scientist: £44,905-53,349

Closing Date: 8th February 2026

Hybrid Working at Wellcome Sanger: We recognise that there are many benefits to Hybrid Working; including an improved work-life balance, with more focused time, as well as the ability to organise working time so that collaborative opportunities and team discussions are facilitated on campus. The hybrid working arrangement will vary for different roles and teams. The nature of your role and the type of work you do will determine if a hybrid working arrangement is possible.

Equality, Diversity and Inclusion: We aim to attract, recruit, retain and develop talent from the widest possible talent pool, thereby gaining insight and access to different markets to generate a greater impact on the world. We have staff networks, LGBTQ+, Parents and Carers, Disability and Race Equity to bring people together to share experiences, offer specific support and development opportunities and raise awareness. The networks are also a place for allies to provide support to others. We want our people to be whoever they want to be because we believe people who bring their best selves to work, do their best work. That’s why we’re committed to creating a truly inclusive culture at Sanger Institute. We will consider all individuals without discrimination and are committed to creating an inclusive environment for all employees, where everyone can thrive.

Principal/Senior Data Scientist employer: Wellcome Genome Campus Limited

At Wellcome Sanger Institute, we pride ourselves on being an exceptional employer, offering a collaborative and inclusive work culture that fosters innovation in computational biology and AI. Our commitment to employee growth is evident through diverse research opportunities and hybrid working arrangements that promote work-life balance, making it an ideal environment for passionate individuals eager to contribute to transformative projects in health and science.
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Contact Detail:

Wellcome Genome Campus Limited Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Principal/Senior Data Scientist

✨Tip Number 1

Network like a pro! Reach out to people in your field on LinkedIn or at conferences. A friendly chat can lead to opportunities you might not find on job boards.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, especially those related to AI and data science. This gives potential employers a taste of what you can do.

✨Tip Number 3

Prepare for interviews by practising common questions and scenarios specific to data science. We recommend doing mock interviews with friends or using online platforms to boost your confidence.

✨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 joining our team at StudySmarter.

We think you need these skills to ace Principal/Senior Data Scientist

Advanced Statistical Techniques
Machine Learning
Deep Learning
Python Programming
Scikit-Learn
SciPy
TensorFlow
PyTorch
Cloud Computing (Amazon AWS S3, EC2)
Data Science Libraries
Software Development Best Practices
Communication Skills
Research Experience in Machine Learning
Publication Record
Collaboration and Networking Skills

Some tips for your application 🫡

Tailor Your CV: Make sure your CV is tailored to highlight your relevant experience in data science and computational biology. We want to see how your skills align with the transformative projects we’re working on, so don’t hold back!

Craft a Compelling Cover Letter: Your cover letter is your chance to shine! Share your passion for biology and AI, and explain why you’re excited about the specific focus areas mentioned in the job description. Let us know what drives you!

Showcase Your Skills: Be sure to highlight your technical skills, especially in Python and machine learning frameworks. We love seeing evidence of your experience with advanced statistical techniques and cloud environments, so make it clear!

Apply Through Our Website: Don’t forget to apply through our website! It’s the best way to ensure your application gets into the right hands. Plus, it shows us you’re serious about joining our team at StudySmarter.

How to prepare for a job interview at Wellcome Genome Campus Limited

✨Know Your Stuff

Make sure you brush up on the latest advancements in computational biology and AI, especially around single-cell genomics and spatial transcriptomics. Be ready to discuss how your experience aligns with the transformative projects mentioned in the job description.

✨Showcase Your Skills

Prepare to demonstrate your proficiency in Python and relevant libraries like TensorFlow and PyTorch. You might be asked to solve a problem or explain a complex algorithm, so practice articulating your thought process clearly and confidently.

✨Connect the Dots

Think about how your previous work experience relates to the key focus areas of the role. Be ready to share specific examples of how you've applied machine learning techniques in a scientific context, particularly in drug discovery or multi-omics data analysis.

✨Ask Insightful Questions

Prepare thoughtful questions that show your interest in the team’s projects and the company’s mission. Inquire about their current challenges in developing AI models for biological data or how they foster collaboration within their interdisciplinary team.

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