
Research
The GCF6 Agentic AI Lead – Disease Biology & Target Discovery is a senior scientific and technical leader responsible for developing AI-enabled approaches that accelerate disease understanding, target identification, mechanism-of-action analysis, and translational research.
This role combines expertise in disease biology and biomedical research with knowledge of modern AI technologies, including knowledge graphs, foundation models, retrieval systems, and agentic AI architectures.
The leader works closely with scientists and ML engineers to design intelligent workflows that integrate biological knowledge, data, literature, and computational models to support decision-making across the discovery process.
This role serves as the primary scientific lead for AI applications in disease biology and target discovery.
Core Responsibilities
Scientific AI Strategy
Develop and execute a roadmap for AI-enabled capabilities supporting:
Identify opportunities where AI can improve scientific reasoning, evidence integration, and discovery productivity.
Knowledge-Driven AI Systems
Lead development of AI solutions that leverage:
Define approaches for integrating structured and unstructured knowledge into AI-assisted scientific workflows.
Agentic Workflow Design
Design intelligent workflows that combine:
Guide development of AI agents that support complex biological investigations and target evaluation processes.
Scientific Leadership
Serve as the primary interface with disease area scientists, translational researchers, and target discovery teams.
Translate scientific challenges into AI opportunities and technical requirements.
Provide scientific oversight and ensure AI outputs remain biologically meaningful, interpretable, and actionable.
AI & Knowledge Graph Innovation
Evaluate and guide adoption of emerging approaches including:
Identify opportunities to create reusable capabilities that can be applied across multiple therapeutic areas.
Collaboration & Delivery
Partner closely with:
Drive prioritization and execution of AI initiatives within disease biology and target discovery programs.
Core Competencies
Deep expertise in one or more of:
Strong understanding of:
Ability to connect biological questions with AI-enabled solutions.
Core Success Measures
Preferred Qualifications
PhD in Biology, Computational Biology, Bioinformatics, Biomedical Informatics, Systems Biology, Computer Science, or related field.
Experience applying AI, machine learning, or knowledge-driven systems to biological research.
Demonstrated leadership in cross-functional scientific programs.

Amgen harnesses the best of biology and technology to fight the world’s toughest diseases, and make people’s lives easier, fuller and longer. We helped establish the biotechnology industry, and we remain on the cutting-edge of innovation, using technology and human genetic data to push beyond what’s known today. Our investment in research and development has yielded a robust pipeline that builds on our existing portfolio of medicines to treat cancer, heart disease, osteoporosis, inflammatory diseases and rare diseases.
Amgen is one of 30 companies comprising the Dow Jones Industrial Average®, and part of the Nasdaq-100 Index®. In 2024, Amgen was named one of the “World’s Most Innovative Companies” by Fast Company and one of “America’s Best Large Employers” by Forbes.
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