G
Full Time Permanent

New York City, New York · USA job

Machine Learning Scientist, Scientific Reasoning Models, AI for Drug Discovery

Genentech

New York City, New York

Job description

Overview

In this role you will advance AI-powered drug discovery by developing scalable ML systems and improving large language models for biomolecular design. You'll bridge engineering and research, turning scientific ideas into production-ready tooling. You'll work with cross-functional scientists to translate biology into machine learning objectives, benchmarks, and data pipelines. This is an opportunity to shape how data and AI accelerate medicines for patients worldwide.

Compensation / Benefits
  • discretionary annual bonus
  • benefits package per policy
  • opportunity to work at biotech leader
  • relocation not offered
  • salary range varies by location
  • full-time employment
Responsibilities
  • Design, implement, and scale large-scale distributed ML systems and core infrastructure
  • Develop strategies to improve model performance on scientific tasks and long-horizon reasoning
  • Translate biological/chemical knowledge into ML objectives, signals, and evaluation criteria
  • Design evaluation methodologies and collaborate with domain experts to establish benchmarks and data quality
  • Collaborate with researchers to translate ideas into scalable, production-ready systems
  • Maintain training infrastructure and data pipelines to ensure reliable experiments on clusters
  • Work with senior scientists to implement novel algorithms and prototype research into software
Key requirements
  • BS/MS in Computer Science, Statistics, Mathematics, Physics, or related quantitative field with 2+ years of experience, or PhD with 0-2 years experience
  • Experience developing and training large-scale ML models including domain knowledge enhancement and alignment
  • Strong software engineering skills and experience with high-performance computing systems
  • Publication record in top-tier venues (e.g., NeurIPS, ICLR, ICML)
  • Experience collaborating with researchers and translating research into production
  • collaboration with cross-functional teams
  • ability to translate domain knowledge into ML problems
  • communication of complex ideas to diverse stakeholders
  • LLM development and training
  • distributed ML systems
  • training infrastructure and data pipelines

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