Statistical Geneticist - ML in Sheffield

Statistical Geneticist - ML in Sheffield

Sheffield Full-Time 60000 - 80000 £ / year (est.) Home office (partial)
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At a Glance

  • Tasks: Lead groundbreaking analyses in genetics and collaborate with diverse teams to drive drug discovery.
  • Company: Join a cutting-edge techbio on a mission to revolutionise health resilience.
  • Benefits: Competitive salary, flexible work options, and opportunities for professional growth.
  • Other info: Dynamic team environment with a focus on collaboration and innovation.
  • Why this job: Make a real impact in healthcare by unlocking novel therapies through innovative research.
  • Qualifications: MSc or PhD in relevant fields and hands-on experience with large-scale genetic datasets.

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

Wenham Carter are partnered with a cutting-edge techbio, on a mission to model health resilience, unlocking novel therapies. Combining large-scale human genetics, multi‑omics, and AI, they are driving target discovery and accelerating drug development in partnership with leading pharma companies. They are hiring a Statistical Geneticist with a strong analytical background to a key role in their genetics‑driven causal AI platform:

  • Responsibilities
  • Lead GWAS, PheWAS, PRS, rare variant and post‑GWAS analyses
  • Integrate multi‑omics QTL data (eQTL, pQTL, mQTL) for gene prioritisation and causal inference
  • Apply ML‑derived and continuous phenotypes to enhance genetic discovery
  • Build scalable, reproducible pipelines for population-scale datasets
  • Work cross‑functionally with ML, biology, and engineering teams to drive drug discovery decisions
  • What we’re looking for
    • MSc or PhD in Statistical Genetics, Bioinformatics, Biostatistics, or similar. First authorships on published papers particularly interesting
    • Hands-on experience with large-scale genetic datasets
    • Demonstrated skills & experience in Python/PyTorch, R, Unix/Linux, and GWAS methodologies
    • Experience with HPC or cloud computing
    • Experience in deep learning or ML.

    Please apply with an updated CV to be considered for the position. Be prepared to talk through your skills and experience which aligns with the position.

    Statistical Geneticist - ML in Sheffield employer: Searches @ Wenham Carter

    Wenham Carter is an exceptional employer, offering a dynamic work environment at the forefront of health resilience and drug development. With a strong emphasis on collaboration across multi-disciplinary teams, employees benefit from continuous learning opportunities and the chance to contribute to groundbreaking research that has a real-world impact. Located in a vibrant tech hub, the company fosters a culture of innovation and inclusivity, making it an ideal place for passionate individuals looking to advance their careers in statistical genetics and AI.
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    Contact Detail:

    Searches @ Wenham Carter Recruiting Team

    StudySmarter Expert Advice 🤫

    We think this is how you could land Statistical Geneticist - ML in Sheffield

    ✨Tip Number 1

    Network like a pro! Reach out to people in the industry, especially those working in techbio or genetics. A friendly chat can lead to opportunities that aren’t even advertised yet.

    ✨Tip Number 2

    Show off your skills! Prepare a portfolio or a GitHub repository showcasing your projects in Python, R, or any relevant tools. This gives potential employers a taste of what you can do.

    ✨Tip Number 3

    Practice makes perfect! Get ready for interviews by brushing up on your knowledge of GWAS, PheWAS, and ML techniques. Be prepared to discuss how you’ve applied these in real-world scenarios.

    ✨Tip Number 4

    Don’t forget to apply through our website! It’s the best way to ensure your application gets seen. Plus, we love seeing candidates who are proactive about their job search.

    We think you need these skills to ace Statistical Geneticist - ML in Sheffield

    Statistical Genetics
    Bioinformatics
    Biostatistics
    GWAS
    PheWAS
    PRS
    Rare Variant Analysis
    Multi-Omics Integration
    QTL Data Analysis
    Causal Inference
    Machine Learning (ML)
    Python
    PyTorch
    R
    Unix/Linux

    Some tips for your application 🫡

    Tailor Your CV: Make sure your CV highlights your experience in statistical genetics and any relevant projects you've worked on. We want to see how your skills align with the role, so don’t be shy about showcasing your first authorships and hands-on experience with large-scale datasets!

    Showcase Your Technical Skills: Since this role involves a lot of technical work, be sure to mention your proficiency in Python, R, and any experience with GWAS methodologies. We love seeing candidates who can demonstrate their ability to work with ML and deep learning tools, so include specific examples where you’ve applied these skills.

    Highlight Collaborative Experience: This position requires working cross-functionally, so it’s important to mention any past experiences where you collaborated with teams from different disciplines. We’re looking for team players who can drive drug discovery decisions alongside ML, biology, and engineering teams.

    Apply Through Our Website: We encourage you to apply through our website to ensure your application gets the attention it deserves. Make sure to double-check your application for any typos or errors before hitting send – we want to see your best work right from the start!

    How to prepare for a job interview at Searches @ Wenham Carter

    ✨Know Your Stuff

    Make sure you brush up on your knowledge of GWAS, PheWAS, and the various analyses mentioned in the job description. Be ready to discuss your hands-on experience with large-scale genetic datasets and how you've applied ML techniques in your previous work.

    ✨Showcase Your Projects

    Prepare to talk about your first authorships and any relevant projects you've worked on. Highlight how your contributions have driven results, especially in integrating multi-omics data or building scalable pipelines. This will demonstrate your practical skills and analytical background.

    ✨Familiarise with Tools

    Since the role requires proficiency in Python/PyTorch, R, and Unix/Linux, make sure you're comfortable discussing these tools. You might even want to prepare a few examples of how you've used them in past projects, particularly in relation to drug discovery.

    ✨Cross-Functional Collaboration

    Be ready to discuss your experience working with cross-functional teams, especially with ML, biology, and engineering. Share specific examples of how collaboration has led to successful outcomes in your previous roles, as this is key for driving drug discovery decisions.

    Statistical Geneticist - ML in Sheffield
    Searches @ Wenham Carter
    Location: Sheffield

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