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Advisor - Computational Biology

Eli Lilly and Company
Full-time
Remote friendly (Boston, MA)
United States
$156,750 - $250,800 USD yearly
Clinical Research and Development

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Role Summary

Advisor - Computational Biology at Lilly Gene Therapy. Join a cross-functional team focused on inventing, characterizing, and advancing genome therapy reagents to deliver on the promise of gene therapy to patients around the world.

Responsibilities

  • Design, execute, and maintain bioinformatics pipelines for analyzing bulk and single-cell RNA sequencing, AAV integration analysis, vector genome sequencing, and capsid library screening data.
  • Perform end-to-end NGS data analysis including quality control, variant calling, differential expression analysis, and biological interpretation
  • Develop computational methods for AAV vector characterization, including integration site analysis, biodistribution assessment, and tissue-specific biological interpretation
  • Support AAV capsid engineering through computational analysis of structure-function relationships and receptor binding prediction
  • Analyze transcriptomic and proteomic datasets to identify therapeutic targets and biomarkers for gene therapy
  • Communicate and present experimental findings to internal teams and Lilly stakeholders
  • Collaborate cross-functionally within Lilly Gene Therapy and Lilly Research Laboratories, ensuring milestones are met while adapting to evolving priorities

Qualifications

  • PhD in Bioinformatics, Computational Biology, Genomics, or related fields
  • Minimum 2 years industry experience in bioinformatics with focus on NGS data analysis and/or structural modeling
  • Preferred: demonstrated publication record and familiarity with AAV biology, capsid engineering, and gene therapy applications

Skills

  • Strong written and verbal communication, with ability to present complex data to diverse audiences
  • Project management skills with ability to handle multiple concurrent projects
  • Experience working in multidisciplinary teams and collaborative research environments
  • Attention to detail and commitment to reproducible research practices
  • Background in structural biology and protein engineering
  • Experience with machine learning applications in biotechnology and drug discovery

Education

  • PhD degree in Bioinformatics, Computational Biology, Genomics, or related scientific fields

Additional Requirements

  • Travel up to 10-15% for conferences or training
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