Senior/Staff AI Scientist (Polytope Bio)

Posted 16 Days Ago
Be an Early Applicant
2 Locations
In-Office
200K-300K Annually
Senior level
Artificial Intelligence • Machine Learning • Biotech • Generative AI
The Role
Lead research to develop post-training reinforcement learning methods that convert high-throughput biological measurements into rewards for generative biological language models. Architect and run large-scale model training, work closely with experimental teams to align measurements and modeling, and iterate rapidly to publish new methods and models.
Summary Generated by Built In
About Astera:

Astera is a private foundation on a mission to steer science and technology toward an abundant future. We believe the coming years will bring an era of unprecedented scientific and technological advancement as exponential progress in AI converges with central advances in other fields to dramatically accelerate innovation. This inflection point provides an unparalleled opportunity to fundamentally rethink the institutions, systems, and tools that drive scientific progress.

Unlike traditional non-profit research organizations, projects supported by Astera operate like high-velocity startups, allowing us to focus on ambitious goals, match structure to problem, and attract strong technical talent and leadership. You can read more about our mission, vision, and programming here.

Position Summary

Today's frontier biological AI models are trained almost entirely on static, pre-existing data. They are powerful pattern matchers, but lack feedback from real biology.

Polytope Bio is a residency project at Astera that is building the missing piece: a post-training engine that closes the loop between frontier AI models and high-throughput biology. Our work will power new applications in generative biology by aligning frontier AI models directly to experimental measurements of what actually folds, binds, and functions.

We are looking for a Senior/Staff AI Research Scientist to join our foundational team. You will be joining at the point of maximum leverage: early enough to influence the modeling approaches, experimental design, and training strategy. The project is resourced with significant compute, financial runway, and the ability to generate large-scale prospective biological datasets. The researcher in this role will work hands-on to develop and publish new reinforcement learning methods and generative AI models leveraging datasets created by our unique high-throughput biology platform.

While our immediate focus is on hands-on research and rapid execution, there is potential for the right candidate to evolve into a co-founding technical or leadership role in the event of a future spinout.

Responsibilities:
  • Drive core research: Work closely with the technical founder and team to develop and execute the scientific vision, develop cutting-edge modeling approaches, and iterate rapidly on new ideas.

  • Develop RL feedback loop: Design, implement, and improve model post-training methods that translate high-throughput biological measurements into direct reward signals for biological language models.

  • Hands-on engineering: You will work directly with the technical team to architect model training infrastructure and build, run, and debug models, training loops, and evaluation metrics.

  • Bridge wet/dry lab: Partner with the experimental team to ensure that what we measure in the lab and what the models learn are designed as a single, cohesive system.

Qualifications and Experience
  • Research Experience: PhD in machine learning, computational biology, or a related field, with a minimum of 1-2 years of post-PhD research or industry experience (accomplished researchers without a PhD are also encouraged to apply).

  • Model Training: You have trained models from scratch, not just fine-tuned or called APIs. You have owned real training runs, know where they break, and know how to debug them.

  • Modern Algorithms: Hands-on experience with generative diffusion models and/or transformer architectures.

  • Reinforcement Learning: Familiarity with modern reinforcement learning and preference-optimization methods for deep learning.

  • Builder mindset: A track record of strong research via publications, open-source work, shipped models, or equivalent evidence that you drive results. You are highly self-directed but thrive in a tight-knit, collaborative early-stage environment.

  • Entrepreneurial spirit: Comfort operating with ambiguity and a desire to build something new. You are excited to tackle hard problems and potentially transition into a technical co-founder in the future.

Strong Pluses
  • Familiarity with biological research (protein modeling, sequence models, structural biology, or adjacent areas).

  • Experience building and scaling training infrastructure on large GPU clusters.

Location

Preference for candidates able to co-locate in NYC or SF Bay Area. Remote work is possible for the right candidate.

What we offer
  • Compensation: Base salary of $200,000 to $300,000 during the residency.

  • Upside: The potential to evolve into a co-founding technical role in a future spinout, contingent on project success and mutual fit.

  • Scientific Impact: Authorship of high-impact open-source datasets, methods, and models

  • Resources: Significant secured runway and dedicated GPU resources.

  • Unique Environment: A rare combination of frontier ML work directly coupled to a purpose-built, high-throughput experimental engine.

  • Comprehensive Benefits: Full benefits package including health insurance, a company sponsored retirement plan, vision, dental, and more.

Skills Required

  • PhD in machine learning, computational biology, or related field, with 1-2+ years post-PhD research or industry experience (equivalent experience considered).
  • Experience training models from scratch (owning real training runs), including debugging training loops and evaluation.
  • Hands-on experience with generative diffusion models and/or transformer architectures.
  • Familiarity with modern reinforcement learning and preference-optimization methods for deep learning.
  • Proven research output: publications, open-source contributions, shipped models, or equivalent evidence of impact.
  • Entrepreneurial mindset and ability to operate in ambiguous early-stage environments; potential to evolve into technical leadership.
  • Familiarity with biological research (protein modeling, sequence models, structural biology)
  • Experience building and scaling training infrastructure on large GPU clusters.
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The Company
HQ: Rouen
57 Employees
Year Founded: 2020

What We Do

Astera is a private foundation with a $2.5B endowment focused on steering science and technology toward an abundant future for all. They operate like a high-velocity startup, integrating neuroscience, AI, and bioengineering for AGI research.

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