Computational Biology & Machine Learning Scientist
Computational Biology & Machine Learning Scientist

Computational Biology & Machine Learning Scientist

York Full-Time 43200 - 72000 £ / year (est.) Home office (partial)
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At a Glance

  • Tasks: Develop machine learning models to decode and engineer the immune system.
  • Company: Join a cutting-edge biotech organisation at the forefront of immunology research.
  • Benefits: Enjoy flexible work options, innovative projects, and opportunities for professional growth.
  • Why this job: Be part of a collaborative team tackling complex biological challenges with real-world impact.
  • Qualifications: PhD or MSc in relevant fields; strong ML background and programming skills required.
  • Other info: Ideal for those passionate about merging technology with biology in a dynamic environment.

The predicted salary is between 43200 - 72000 £ per year.

A cutting-edge biotech organization is seeking highly motivated Computational Scientists to support the mission of decoding and engineering the immune system. The role focuses on developing advanced machine learning and statistical models to analyze complex biological data, particularly immune repertoires and multimodal datasets.

About the Role

  • Design and implement machine learning models—particularly language models, diffusion models, or graph neural networks—tailored to biomedical challenges.
  • Build novel computational methods for interpreting biological sequences and structural data.
  • Customize existing tools and develop new ones for integrative analysis and visualization of large-scale systems immunology data.
  • Drive ML-based pipelines for diagnostic or therapeutic design.
  • Benchmark computational methods and optimize performance across datasets.
  • Lead or contribute to collaborative projects spanning academic, clinical, and industry domains.

Required Qualifications

  • PhD (or MSc with equivalent experience) in Computational Biology, Bioinformatics, Computer Science, Statistics, Physics, or related quantitative discipline.
  • Strong background in machine learning and statistical modeling, with a demonstrated ability to solve complex biological problems.
  • Proven track record of scientific productivity (e.g., peer-reviewed publications).
  • Hands-on experience in data handling, visualization, and biological data analysis.
  • Proficient in Python, familiar with software development best practices.
  • Practical experience with TensorFlow and/or PyTorch.

Preferred Qualifications

  • 3+ years post-graduate experience in academia or biotech/pharma, applying ML/AI to biological datasets.
  • Prior exposure to immunology, especially TCR/BCR repertoire analysis, or experience with protein design & or biologics.
  • Deep expertise in at least one of the following areas:
  • Language models for sequence analysis
  • Diffusion models in molecular design
  • Graph ML in biomedical networks
  • Experience with GPU computing (cloud or HPC clusters).
  • Computational Biology & Machine Learning Scientist employer: Skills Alliance

    Join a pioneering biotech organisation that champions innovation and collaboration in the field of computational biology. With a strong emphasis on employee growth, you will have access to cutting-edge resources and opportunities to work alongside leading experts in machine learning and immunology. Our inclusive work culture fosters creativity and encourages the development of novel solutions to complex biological challenges, making it an ideal environment for those seeking meaningful and impactful careers.
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    Contact Detail:

    Skills Alliance Recruiting Team

    StudySmarter Expert Advice 🤫

    We think this is how you could land Computational Biology & Machine Learning Scientist

    ✨Tip Number 1

    Familiarise yourself with the latest advancements in machine learning models, especially those relevant to biomedical applications. Being able to discuss recent breakthroughs or techniques in your interview can demonstrate your passion and knowledge in the field.

    ✨Tip Number 2

    Network with professionals in the biotech and computational biology sectors. Attend conferences, webinars, or local meetups to connect with others in the industry. This can lead to valuable insights and potentially even referrals for job openings.

    ✨Tip Number 3

    Showcase your hands-on experience with tools like TensorFlow and PyTorch through personal projects or contributions to open-source initiatives. Having a portfolio of work that demonstrates your skills can set you apart from other candidates.

    ✨Tip Number 4

    Prepare to discuss specific examples of how you've applied machine learning to solve biological problems in past roles. Be ready to explain your thought process and the impact of your work, as this will highlight your practical experience and problem-solving abilities.

    We think you need these skills to ace Computational Biology & Machine Learning Scientist

    Machine Learning
    Statistical Modelling
    Computational Biology
    Bioinformatics
    Data Analysis
    Biological Data Visualization
    Python Programming
    TensorFlow
    PyTorch
    Graph Neural Networks
    Language Models
    Diffusion Models
    Immunology Knowledge
    TCR/BCR Repertoire Analysis
    Protein Design
    GPU Computing

    Some tips for your application 🫡

    Tailor Your CV: Make sure your CV highlights relevant experience in computational biology, machine learning, and any specific projects related to immunology or biologics. Use keywords from the job description to align your skills with what the company is looking for.

    Craft a Compelling Cover Letter: In your cover letter, express your passion for the role and the company's mission. Discuss your experience with machine learning models and how it relates to the challenges mentioned in the job description. Be specific about your contributions to past projects.

    Showcase Your Publications: If you have peer-reviewed publications, mention them in your application. Highlight any that are particularly relevant to computational biology or machine learning, as this demonstrates your scientific productivity and expertise in the field.

    Highlight Technical Skills: Clearly list your technical skills, especially your proficiency in Python and experience with TensorFlow or PyTorch. If you have worked with GPU computing or have knowledge of specific models like language models or graph ML, make sure to include that as well.

    How to prepare for a job interview at Skills Alliance

    ✨Showcase Your Technical Skills

    Be prepared to discuss your experience with machine learning models, particularly language models, diffusion models, or graph neural networks. Highlight specific projects where you've applied these techniques to solve biological problems.

    ✨Demonstrate Your Collaborative Spirit

    Since the role involves working within a collaborative team, share examples of past teamwork experiences. Discuss how you contributed to projects that spanned academic, clinical, and industry domains, showcasing your ability to work well with others.

    ✨Prepare for Problem-Solving Questions

    Expect to face questions that assess your problem-solving abilities in computational biology. Be ready to walk through your thought process on how you would approach a complex biological dataset or challenge, demonstrating your analytical skills.

    ✨Familiarise Yourself with Current Trends

    Stay updated on the latest advancements in computational biology and machine learning, especially in immunology and biologics. Being knowledgeable about recent research or breakthroughs can help you engage in meaningful discussions during the interview.

    Computational Biology & Machine Learning Scientist
    Skills Alliance
    Location: York
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    • Computational Biology & Machine Learning Scientist

      York
      Full-Time
      43200 - 72000 £ / year (est.)
    • S

      Skills Alliance

      50-100
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