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Head of Lead
Job in
Indianapolis, Marion County, Indiana, 46218, USA
Listed on 2026-02-15
Listing for:
Eli Lilly and Company
Full Time
position Listed on 2026-02-15
Job specializations:
-
IT/Tech
Data Scientist, Data Science Manager
Job Description & How to Apply Below
At Lilly, we unite caring with discovery to make life better for people around the world. We are a global healthcare leader headquartered in Indianapolis, Indiana. Our employees around the world work to discover and bring life-changing medicines to those who need them, improve the understanding and management of disease, and give back to our communities through philanthropy and volunteerism.
We give our best effort to our work, and we put people first. We're looking for people who are determined to make life better for people around the world.
We are seeking an Executive Director for our RNA Team. The successful candidate for this newly created leadership role within the RNA team will scale how we identify and select lead oligonucleotide therapeutics and create datasets that will fuel our AI/ML modelling efforts. This leader will build and scale enterprise discovery platforms within the RNA therapeutics team that integrate computational biology, high-throughput screening, multi-omic analytics, and machine learning to accelerate target-to-candidate timelines while improving probability of technical and regulatory success.
They will be responsible for leading teams that are establishing quantitative, high-throughput discovery systems that enable earlier go/no-go decisions and generate differentiated molecular candidates across 20+ active RNA programs.
Job Responsibilities
* Lead an established team of BSc to PhD-level scientists and engineers to deliver enterprise-scale lead discovery capabilities
* Lead team adaptation and execution of high-throughput transcriptome-wide selectivity profiling methods (e.g., concentration-response digital gene expression) to quantify hybridization-dependent and hybridization-independent off-targets with improved sensitivity
* Partner with teams developing predictive ML models for in vivo activity, pharmacodynamics, and tolerability from sequence, structure, and chemical modification features
* Partner with automation leadership to deploy high-throughput screening at scale, targeting thousands of molecules per program
* Work closely with data Science/AI/ML teams to integrate lead discovery data into unified siRNA modeling platforms that merge molecular design with oligonucleotide chemistry
* Collaborate with chemistry teams on structure-activity relationship studies, including novel chemistries
* Collaborate with Biology leads across therapeutic areas to ensure fit-for-purpose evidence packages for progression decisions
* Mentor engineering efforts to build robust pipelines processing large-scale transcriptome datasets, centralizing curated data assets for reusable analytics
* Establish data governance frameworks ensuring molecule discovery data is database-ready and integrated with enterprise systems
* Manage NGS core operations or equivalent high-throughput assay infrastructure; scale throughput to meet portfolio demand
Basic Qualifications
* Ph.D. in Computational Biology, Bioinformatics, Molecular Biology, or related field
* 12+ years of experience in drug discovery, with significant depth in RNA-targeted therapeutics (ASO, siRNA, splice-switching oligonucleotides)
* 5+ years of leadership experience managing PhD-level scientists and/or engineers in both "wet" and "dry" science teams
Additional Skills & Preferences
* Demonstrated track record of building and scaling discovery platforms that have advanced multiple candidates into clinical development
* Deep knowledge of oligonucleotide chemistry, including modified nucleotides, backbone modifications, and conjugate strategies and screening processes
* Deep expertise in transcriptomics, including bulk and single-cell RNA-seq design, analysis, and interpretation
* Experience with mechanism-of-action and pharmacodynamic studies using multi-omic approaches
* Proficiency in machine learning methods (XGBoost, Random Forest, neural networks) applied to biological sequence data
* Experience with high-throughput NGS assay development and core operations
* Familiarity with ETL pipelines, cloud-scale computation, and reproducible analytics workflows
* Ability to operate across subject areas and translate complex technical concepts into…
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