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Engineer - MLOps & Scientific Platforms - Data Foundry

LinkedIn Eli Lilly and Company Boston, MA
Not Applicable Posted April 5, 2026 3 variants Job link
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Requirements
  • 3+ years of experience in MLOps, ML engineering, or scientific platform development
  • Qualified applicants must be authorized to work in the United States on a full-time basis.
  • Lilly will not provide support for or sponsor work authorization or visas for this role, including but not limited to F-1 CPT, F-1 OPT, F-1 STEM OPT, J-1, H-1B, TN, O-1, E-3, H-1B1, or L-1.
Preferred Skills
  • Pharmaceutical or biotech research industry experience.
  • Strong Python skills; experience with ML frameworks (PyTorch, TensorFlow, scikit-learn) and ML lifecycle tools (MLflow, W&B, Kubeflow, or similar).
  • Proven track record building and deploying production model serving infrastructure — containerized endpoints, RESTful/gRPC APIs, and operational monitoring
  • Working knowledge of cloud platforms (AWS, Azure, or GCP), Kubernetes, and CI/CD automation.
  • Strong communication skills with ability to collaborate across computational scientists, software engineers, and partner teams.
  • Experience operationalizing scientific or computational models (cheminformatics, bioinformatics, structural biology, QSAR, molecular simulations, PK/PD, systems biology, or ODE-based models).
  • Hands-on experience with model monitoring, drift detection, and automated retraining systems.
  • Familiarity with API gateway patterns, event-driven architectures, and service mesh technologies.
  • Experience with feature stores, data versioning (DVC), or experiment tracking at scale.
  • Exposure to AI agent frameworks (MCP, LangChain) or building APIs that AI systems invoke programmatically.
  • Experience with C, C++, CUDA, or GPU-accelerated computing for optimizing model training/inference performance; familiarity with containerizing HPC workloads (Singularity/Apptainer).
  • Lilly is dedicated to helping individuals with disabilities to actively engage in the workforce, ensuring equal opportunities when vying for positions.
Education
  • (Not required) – B.S. or M.S. in Computer Science, Data Science, Machine Learning, Bioinformatics, Computational Biology, or related field.