ML Research Scientist (MLRS) - Generative AI

Achira

$130K — $180K *
Pharmaceuticals & Biotech
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in machine learning research, particularly in an industry setting.
  • Proficiency in Python and modern ML frameworks like PyTorch or JAX.
  • Demonstrated research impact through publications or conference presentations.
  • Strong interdisciplinary communication skills to convey complex ideas across teams.
  • Ability to collaborate effectively on multi-person research projects.

Responsibilities

  • Invent advanced sampling and simulation methods integrating deep learning and probabilistic inference.
  • Design and train various generative models including diffusion and flow-based architectures.
  • Build models bridging data distributions to enhance simulation realism.
  • Prototype and benchmark to turn research concepts into scalable components.
  • Collaborate with physicists and chemists to ground models in real physics.
  • Identify support needs for research ideas with research engineers and infrastructure teams.

Benefits

  • Hybrid work model with options for San Francisco and New York City.
  • Opportunities for travel to conferences and corporate activities.
  • Collaborative working environment with experts in various fields.
Full Job Description
About the Role

We're looking for machine learning researchers who want to shape the frontier of generative models for the atomistic microcosm. You will work at the intersection of cutting-edge machine learning, statistical mechanics, and approximate bayesian inference to help us conquer sampling problems at light-speed. In addition, you'll collaborate with experts in chemistry and physics to invent and implement models to unlock what's possible for Achira's microscopic world models.

While we prefer candidates willing to work from our San Francisco office, highly skilled candidates may be considered for working from New York City with travel to San Francisco as needed. Both locations are offered as hybrid roles, spending at least some of your time working from the office in collaboration with coworkers. Travel is part of all roles at Achira, both to conferences and corporate on-site activities.

What You'll Do
  • Invent advanced sampling and simulation methods that integrate probabilistic inference, deep learning, and reinforcement learning to enable efficient exploration and simulation of learned energy landscapes for molecular systems.
  • Design and train frontier generative models: diffusion, autoregressive, flow-based, and latent-variable architectures.
  • Build models that can map between data distributions to bridge the gap between simulation and reality.
  • Prototype, benchmark, and iterate rapidly to transform research ideas into reusable and scalable components across Achira's ecosystem.
  • Collaborate with physicists and chemists to ensure models are grounded in real physics.
  • Work with research engineers and the infrastructure team to identify where research ideas will need support in order to deliver effective results.


About You
  • Interested in building generative models that describe real matter.
  • Drive to build at the frontier of what's possible and try out new, high-risk ideas.
  • Machine learning researcher with professional experience (post-degree) in an industry setting.
  • Demonstrated research impact through conference talks or publications (in machine learning venues), open-source contributions, or released models.
  • Strong interdisciplinary communication and presentation skills and the ability to translate ideas and concepts to colleagues from non-ML backgrounds.
  • Proficiency in Python and modern ML frameworks (PyTorch, JAX).
  • Experience collaborating on research projects across multi-person teams.


Nice to Have

Achira values excellent ML researchers from many backgrounds, and expect members of the team to contribute complementary strengths. If the work excites you, we encourage you to apply, even if you hit none of the bonus features listed below!
  • Experience working with models that operate on 3-D point clouds and dynamic data.
  • Experience in sequential monte carlo methods.
  • Experience with probabilistic programming.
  • Experience with pre-training, mid-training, and post-training (especially reenforcement learning) parts of the model development process.
  • Familiarity with statistical mechanics: working knowledge of sampling, estimators, and the Crooks/Jarzynski perspective of nonequilibrium statistical mechanics.
  • Prior experience working in or with researchers in the domains of computational chemistry, biology, or materials science.
  • Experience working with multi-cloud distributed compute systems.
  • Experience working with multi-site distributed company team.

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