Principal Machine Learning Scientist, Frontier Research, AI for Drug Discovery (AIDD)

Genentech
Genentech logo
Location
South San Francisco
Job Type
Full-time
Posted
September 9, 2026
Views
7
Salary Range
$201k - $374k USD

Job Description

A healthier future. It’s what drives us to innovate. To continuously advance science and ensure everyone has access to the healthcare they need today and for generations to come. Creating a world where we all have more time with the people we love. That’s what makes us Roche.

Advances in AI, data, and computational sciences are transforming drug discovery and development. Roche’s Research and Early Development organisations at Genentech (gRED) and Pharma (pRED) have demonstrated how these technologies accelerate R&D, leveraging data and novel computational models to drive impact. Seamless data sharing and access to models across gRED and pRED are essential to maximising these opportunities. The new Computational Sciences Center of Excellence (CoE) is a strategic, unified group whose goal is to harness the transformative power of data and Artificial Intelligence (AI) to assist our scientists in both pRED and gRED to deliver more innovative and transformative medicines for patients worldwide. ​

The Opportunity

Frontier Research is dedicated to foundational machine learning research and developing new algorithmic frameworks. We operate with a flat scientific structure in which senior scientists define their own research agendas, and leaders act as mentors who shape priorities across the organization. We view open science as a core value and a competitive necessity. Our commitment to open dissemination, academic engagement, and community contribution ensures that our work contributes meaningfully to the broader machine learning community and advances the scientific ecosystem.  In biology, many exciting research questions cannot yet be addressed with off-the-shelf ML approaches—they demand not only novel solutions but also new ways of framing the questions themselves, often beyond existing ML paradigms. We believe that the field of generative modeling provides the most promising paths to connect these fields and build robust, impactful solutions.

In this role, you will:

  • Develop theoretical frameworks and algorithms for sampling and generative modeling.
  • Contribute to publications and present your results at internal and external scientific conferences.
  • Collaborate and execute on research that pushes forward the state of the art in machine learning.
  • Directly contribute to experiments, including designing experimental details, writing reusable code, running evaluations, and organizing results.
  • Work with a large and globally distributed team.

Who You Are

  • You have a PhD in Mathematics, Physics, Computer Science, Statistics, Machine Learning, or related disciplines with 2-7 years of relevant work experience.
  • You have a strong publication record in generative modeling, with publications in academic journals like JMLR and at peer-reviewed ML conferences (e.g., NeurIPS, ICML, ICLR, and COLT).
  • You have strong communication and collaboration skills.

Preferred

  • Published work with theoretical contributions.

Relocation benefits are NOT available for this opportunity

This position must be based in South San Francisco, New York City, or Basel

The expected salary range for this position in California is $201,300 - 373,800. For New York City, the expected salary range is $192,500 - 357,500. 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.

Benefits

#ComputationCoE

#tech4lifeComputationalScience

Genentech is an equal opportunity employer. It is our policy and practice to employ, promote, and otherwise treat any and all employees and applicants on the basis of merit, qualifications, and competence. The company's policy prohibits unlawful discrimination, including but not limited to, discrimination on the basis of Protected Veteran status, individuals with disabilities status, and consistent with all federal, state, or local laws.

A healthier future. It’s what drives us to innovate. To continuously advance science and ensure everyone has access to the healthcare they need today and for generations to come. Creating a world where we all have more time with the people we love. That’s what makes us Roche.

Advances in AI, data, and computational sciences are transforming drug discovery and development. Roche’s Research and Early Development organisations at Genentech (gRED) and Pharma (pRED) have demonstrated how these technologies accelerate R&D, leveraging data and novel computational models to drive impact. Seamless data sharing and access to models across gRED and pRED are essential to maximising these opportunities. The new Computational Sciences Center of Excellence (CoE) is a strategic, unified group whose goal is to harness the transformative power of data and Artificial Intelligence (AI) to assist our scientists in both pRED and gRED to deliver more innovative and transformative medicines for patients worldwide. ​

The Opportunity

Frontier Research is dedicated to foundational machine learning research and developing new algorithmic frameworks. We operate with a flat scientific structure in which senior scientists define their own research agendas, and leaders act as mentors who shape priorities across the organization. We view open science as a core value and a competitive necessity. Our commitment to open dissemination, academic engagement, and community contribution ensures that our work contributes meaningfully to the broader machine learning community and advances the scientific ecosystem.  In biology, many exciting research questions cannot yet be addressed with off-the-shelf ML approaches—they demand not only novel solutions but also new ways of framing the questions themselves, often beyond existing ML paradigms. We believe that the field of generative modeling provides the most promising paths to connect these fields and build robust, impactful solutions.

In this role, you will:

  • Develop theoretical frameworks and algorithms for sampling and generative modeling.
  • Contribute to publications and present your results at internal and external scientific conferences.
  • Collaborate and execute on research that pushes forward the state of the art in machine learning.
  • Directly contribute to experiments, including designing experimental details, writing reusable code, running evaluations, and organizing results.
  • Work with a large and globally distributed team.

Who You Are

  • You have a PhD in Mathematics, Physics, Computer Science, Statistics, Machine Learning, or related disciplines with 2-7 years of relevant work experience.
  • You have a strong publication record in generative modeling, with publications in academic journals like JMLR and at peer-reviewed ML conferences (e.g., NeurIPS, ICML, ICLR, and COLT).
  • You have strong communication and collaboration skills.

Preferred

  • Published work with theoretical contributions.

Relocation benefits are NOT available for this opportunity

This position must be based in South San Francisco, New York City, or Basel

The expected salary range for this position in California is $201,300 - 373,800. For New York City, the expected salary range is $192,500 - 357,500. 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.

Benefits

#ComputationCoE

#tech4lifeComputationalScience

Genentech is an equal opportunity employer. It is our policy and practice to employ, promote, and otherwise treat any and all employees and applicants on the basis of merit, qualifications, and competence. The company's policy prohibits unlawful discrimination, including but not limited to, discrimination on the basis of Protected Veteran status, individuals with disabilities status, and consistent with all federal, state, or local laws.

If you have a disability and need an accommodation in relation to the online application process, please contact us by completing this form Accommodations for Applicants.

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Frequently Asked Questions

Where is the job located, and what is the work-mode policy?
The position is based in South San Francisco, California, with additional location options in New York City or Basel. The posting does not specify a remote or hybrid work-mode policy, but notes the role must be based in one of these cities.
What are the required qualifications and experience level for this role?
You need a PhD in Mathematics, Physics, Computer Science, Statistics, Machine Learning, or a related discipline, along with 2-7 years of relevant work experience. A strong publication record in generative modeling at peer-reviewed ML conferences (like NeurIPS, ICML, ICLR, COLT) or journals (like JMLR) is also required.
What are the key responsibilities of the Principal Machine Learning Scientist?
You will develop theoretical frameworks and algorithms for sampling and generative modeling, contribute to publications, and present results at conferences. You will also collaborate on state-of-the-art ML research, design experimental details, write reusable code, run evaluations, and work with a globally distributed team.
What is the salary range for this position?
The expected salary range is $201,300 - $373,800 in California, and $192,500 - $357,500 in New York City. Actual pay depends on experience, qualifications, location, and other factors. A discretionary annual bonus may also be available.
Is relocation support or visa sponsorship offered for this role?
Relocation benefits are not available for this opportunity. The job posting does not mention whether visa sponsorship is or is not offered.

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Job Information

Source: manual
AI Relevance: 93/100 (Highly relevant)
Remote Type: onsite
Allowed Locations: Worldwide
Skills & Tags:
genentech machine learning artificial intelligence drug discovery

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