About the Company
Our client is a cutting-edge biotechnology organization working at the intersection of aging science, AI-driven biology, and drug discovery. Their mission is to develop therapies for age-related and chronic conditions by leveraging foundational models trained on large-scale longitudinal human data. Using advanced techniques to extract biological latent features and integrate genetics with multi-omics, the team is accelerating target discovery and therapeutic development beyond traditional clinical coding frameworks.
Role Overview
The company is seeking a Statistical Geneticist, Computational Biologist, or Bioinformatics Scientist experienced in deep learning applications for variant annotation and functional genomics. The hire will contribute to a next-generation target discovery platform, working with AI models, multi-omics resources, and population-scale genetic datasets to identify therapeutic targets and accelerate drug discovery. Responsibilities include processing genetic datasets (GWAS/PheWAS), building robust pipelines, implementing state-of-the-art methods, and delivering production-quality code. Ideal candidates have strong computational genomics expertise and an interest in translating biological data into real therapeutic insights.
Key Responsibilities
• Manage and preprocess genetics and tabular datasets, including plink-formatted data, GWAS summary statistics, and molQTL datasets.
• Conduct common and rare variant association studies (WGS/WES) and post-GWAS analyses, including colocalization, Mendelian randomization, and integration with transcriptomic/proteomic data.
• Apply classical machine learning and deep learning approaches to functional genomics problems.
• Develop, maintain, and scale automated pipelines for association studies while ensuring code quality and reproducibility.
Qualifications & Experience
Education: MSc or PhD in Statistical Genetics, Bioinformatics, Biostatistics, Computer Science, or a related quantitative discipline.
Experience Requirements:
• 3+ years of relevant hands-on experience post-MSc (doctoral research substitutes for PhD tracks).
• Demonstrated experience analyzing large datasets using statistical inference and machine learning.
• Relevant scientific publications in reputable venues.
Technical Competencies:
• Advanced Python and R programming skills.
• Comfort working in Unix/Linux environments.
• Practical experience with population genetics, GWAS, and post-GWAS analysis frameworks.
• HPC or cloud computing experience required.
• Training deep neural networks is considered a strong plus.
Personal Traits
The ideal candidate is proactive, resourceful, and thrives in fast-moving, highly autonomous settings. Adaptability and curiosity about emerging scientific technologies are essential.
What the Company Offers
• Competitive compensation aligned with industry expectations.
• Fully remote work environment with flexible scheduling.
• High-trust, low-bureaucracy culture emphasizing ownership and accountability.
• Direct impact on core therapeutic discovery efforts from day one.
• Support for scientific publication and research visibility.
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Consultant
Phoebe Lole
With a background in Agriculture and Livestock Science, Phoebe began her career in the food and agriculture industry, working across FSQR, NPD, and supply chain before moving into a role supporting agricultural sustainability at a global food business. After several years in industry, she took a career break to work in the yachting sector - earning her Yachtmaster licence, skippering her own yacht, and progressing to superyachts.
Now part of the Science team at Jackson Hogg, Phoebe recruits across the UK for a wide range of science roles, ranging from lab technicians to regulatory directors, supporting clients across the life science sector. Outside of work, Phoebe enjoys hiking, trail running, and baking.
Consultant - Science
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