Machine Learning Scientist, BioML

Profluent
Location
Emeryville, California, United States; Hybrid (2-3 days on-site)
Job Type
Full-time
Posted
June 5, 2026
Views
7

Job Description

Profluent is an AI-first protein design company. Founded in 2022, we develop deep generative models to design and validate novel, functional proteins to revolutionize biomedicine. Based in Emeryville, CA, we are backed by leading investors including Altimeter Capital, Bezos Expeditions, Spark Capital, Insight Partners, Air Street Capital, AIX Ventures, and Convergent Ventures, and have raised over $150M to date.

We're looking for a motivated and creativeMachine Learning (ML) Scientistto drive research into models at the intersection of complex protein biology and AI. This position offers an opportunity to work at the forefront of generative modeling research across language processing, representation learning, and protein engineering. You should be a self-directed researcher who has the ability to rapidly prototype and evaluate new models and algorithms in the biomolecular domain.

As an early employee, you will proactively shape the direction of our machine learning efforts and collaborate across diverse teams of computational and experimental scientists.

Responsibilities

  • Design and develop state-of-the-art predictive and generative models incorporating domain-specific evolutionary and experimental data
  • Leverage massive-scale protein and nucleic acid data to train specialized models for protein understanding and design
  • Curate relevant datasets and design tasks for rigorous evaluation of generative models
  • Collaborate across the machine learning and protein design teams to adapt and apply techniques for experimental validation
  • Implement, analyze, and interpret multiple computational approaches and present results to colleagues in regular update meetings
  • Work within a collaborative, fast-paced, interdisciplinary team across biology and machine learning to help shape the scientific and strategic vision of the company

Qualifications

  • PhD (or equivalent industry experience) in Computer Science, Machine Learning, Natural Language Processing, Applied Math, Computational Biology, Statistics, or a related field
  • Experience with conceiving of, implementing, and evaluating novel machine learning techniques at the intersection with biology
  • Publications at major machine learning conferences (NeurIPS, ICML, ICLR) or scientific journals (Nature, Science, Nature Biotech, Nature Methods, PNAS)
  • Experience with modern deep learning frameworks such as Pytorch or Jax

Preferences

  • Familiarity with foundational biology of proteins and nucleic acids
  • Experience developing machine learning models for proteins (language models, structure prediction, design)
  • Experience with cloud compute platforms (GCP, AWS, Azure, OCI)
  • Previous experience in data extraction and curation from bioinformatics data sources
  • Familiarity with wet lab experimental assays and associated limitations
  • 3 to 5 years of industry experience

What We Offer

  • High-growth opportunity with meaningful impact on the future of protein design
  • Competitive compensation package with equity participation
  • 401(k) with a strong employer match
  • Comprehensive benefits including health/dental/vision insurance
  • Generous PTO policy and commitment to work-life balance
  • Professional development opportunities in a cutting-edge field at the intersection of AI and biology

Profluent Bio, Inc is an equal opportunity employer promoting diversity and inclusion in the workspace. We do not discriminate on the basis of race, color, religion, marital status, age, national origin, ancestry, physical or mental disability, medical conditions, veteran status, sexual orientation, gender (including gender identity and gender expression), sex (which includes pregnancy, childbirth, and breastfeeding), genetic information, taking or requesting statutorily protected leave, or any other basis protected by law.

Employment Eligibility Verification

Legal authorization to work in the United States is required. In compliance with federal law, all persons hired must verify their identity and work eligibility and complete the required employment verification form upon hire.

Hiring Salary Range

$200,000—$330,000 USD

Frequently Asked Questions

Where is the job located, and is it remote/hybrid/on-site?
The position is located in Emeryville, California, United States, and operates on a hybrid model requiring 2-3 days on-site per week.
What are the key responsibilities of this role?
You will design and develop predictive and generative models using evolutionary and experimental data, train specialized models on massive-scale protein and nucleic acid data, curate datasets, and collaborate across teams to adapt techniques for experimental validation.
What qualifications and experience do I need to apply?
You need a PhD (or equivalent industry experience) in Computer Science, ML, NLP, Applied Math, Computational Biology, Statistics, or a related field. You must have experience implementing novel ML techniques in biology, publications at major ML conferences or scientific journals, and experience with PyTorch or Jax.
What is the salary range for this position?
The hiring salary range for this role is $200,000 to $330,000 USD.
What benefits and compensation package does the company offer?
Profluent offers competitive compensation with equity participation, a 401(k) with a strong employer match, comprehensive health, dental, and vision insurance, a generous PTO policy, and professional development opportunities.
Does this position offer visa sponsorship or require specific work authorization?
Legal authorization to work in the United States is required. All hired individuals must verify their identity and work eligibility and complete the required employment verification form upon hire.

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Job Information

Source: greenhouse
AI Relevance: 95/100 (Highly relevant)
Remote Type: hybrid
Allowed Locations: Emeryville, California, United States; Hybrid (2-3 days on-site)
Skills & Tags:
Machine Learning

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