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Not Specified Permanent

Lemont, Illinois · USA job

Staff Scientist - Post-Training and Reinforcement Learning for AI for Science

Argonne National Laboratory

Lemont, Illinois

Job description

Overview

In this role you advance post-training and reinforcement learning methods for scientific foundation models, aiming to improve usefulness, reliability, and scientific impact. You will scale algorithms and pipelines on leadership-class supercomputers, collaborating with domain scientists to solve high-impact problems. The position sits in a multidisciplinary AI group at Argonne, contributing foundational ML research and real-world scientific outcomes. You'll publish, collaborate with national labs and academia, and help drive the AI for science mission.

Compensation / Benefits
  • Hybrid remote work - Mostly onsite
  • comprehensive benefits package
Responsibilities
  • Develop, scale, and optimize post-training methods for scientific foundation models
  • Advance techniques to improve performance, controllability, reliability, and scientific utility of AI models
  • Design and evaluate RL and post-training pipelines for large-scale scientific environments
  • Develop and optimize workflows for training and post-training on supercomputers and AI-oriented architectures
  • Collaborate with computational scientists and domain researchers on challenging scientific problems
  • Address algorithmic, systems, and data challenges in large-scale training and post-training
  • Conduct original research and communicate findings through publications, talks, and software
  • Engage with national labs, universities, industry, and supercomputing centers on AI for science initiatives
  • Foster a team culture valuing scientific excellence, collaboration, and inclusive growth
Key requirements
  • Bachelor's degree with 5+ years of experience, or a Master's with 3+ years, or a PhD, in a related field
  • Advanced knowledge in machine learning, reinforcement learning, large-scale model training, post-training, optimization, data mining, or statistics
  • Strong background in mathematical optimization, linear algebra, or numerical methods
  • Programming experience in Python, C, or C++
  • Experience with ML frameworks such as PyTorch or JAX
  • Experience with large-scale training, distributed learning systems, or post-training workflows
  • Experience with software development practices for computational science and ML systems
  • Ability to work effectively in interdisciplinary teams
  • Effective written and verbal communication skills
  • Ability to model Argonne's core values of impact, safety, respect, integrity, and teamwork
  • collaborative mindset
  • strong communication
  • teamwork in interdisciplinary settings
  • reinforcement learning
  • post-training methods
  • fundamental ML and DL techniques

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