Education: Bachelor's degree or related field
Experience: 2+ years
At Roche's AI for Drug Discovery (AIDD) group, we are revolutionizing drug discovery with cutting-edge machine learning (ML) techniques. We are seeking a Machine Learning Scientist to join the Foundation Models team within Prescient Design (gRED). In this role, you will contribute to our internal reasoning Large Language Models (LLMs) and enable it to succeed at relevant drug discovery tasks, including biomolecular design.
You will work at the intersection of engineering and research, designing and scaling large machine learning systems.
- Scalable Systems & Engineering: Design, implement, and improve large-scale distributed machine learning systems, writing robust, performance-critical code and contributing to core infrastructure.
- Model Improvement & Reasoning: Develop and execute strategies to systematically improve performance on scientific tasks, including long-horizon task completion and complex reasoning challenges.
- Domain Translation: Translate biological and chemical domain knowledge into concrete machine learning objectives, training signals, and evaluation criteria.
- Evaluation & Benchmarks: Design and implement evaluation methodologies to assess model capabilities relevant to biological research, working with domain experts to establish benchmarks and curate high-quality data.
- Research-to-Production: Collaborate closely with researchers to translate ideas and prototypes into scalable, production-ready systems.
- Focus: You focus on the execution of defined projects. You are responsible for writing clean, efficient code to test specific hypotheses regarding reasoning and alignment.
- Engineering: You contribute to the maintenance of the training infrastructure and data pipelines, ensuring experiments run reliably on our clusters.
- Collaboration: You work closely with senior scientists to implement novel algorithms, translating research papers into working prototypes.
- BS/MS in Computer Science, Statistics, Mathematics, Physics, or a related quantitative field with 2+ years of relevant work experience. Or Ph. D. with 0-2 years relevant work experience.
- LLM Expertise: Experience developing and training large-scale machine learning models, including post-training techniques to enhance domain knowledge, reasoning capabilities, and model alignment.
- Publication Record: A strong history of research excellence at top-tier venues (e.g., NeurIPS, ICLR, ICML).
- Engineering: Strong software engineering skills and experience working with high-performance computing systems.
- Experience with molecular modalities (e.g., protein sequences, chemical graphs, and structured molecular data).
- A public portfolio of research or significant contributions to open-source ML libraries.
- A passion for applying frontier AI to drug discovery.
Relocation benefits are NOT available for this job posting
The expected salary range for this position, based on the primary location of New York City, is $141,100 -262,100 of hiring range, and for San Francisco, $147,600 - 274,000. Actual pay will be determined based on experience, qualifications, geographic location, and other job-related factors permitted by law. A discretionary annual bonus may be available based on individual and Company performance.
This position also qualifies for the benefits detailed at the link provided below.
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