Unknown Company

Postdoctoral AI Researcher in Power Systems

upton, ny • Posted 1 weeks ago
Onsite Full Time Other

Job Overview

The Energy and Photon Science Directorate advances basic science that underpins discoveries and breakthroughs for energy systems. The appointment is for a one-year term with an option for a one-year renewal, funded by project and performance. The successful candidate will contribute to the development of next‑generation AI foundation models and AI‑enabled workflows for electric applications, focusing on advancing GridFM, a grid foundation model for power systems.

Essential Duties and Responsibilities

  • Extend current GridFM capabilities for distribution networks
  • Develop scalable graph‑based machine learning or related models
  • Expand training data generation capabilities
  • Create benchmarks and test developed models

Required Knowledge, Skills, and Abilities

  • Ph.D. in Computer Science, Electrical Engineering, Mathematics, Physics, or a related field.
  • Strong background in machine learning and deep learning.
  • Experience with PyTorch, JAX, TensorFlow, or similar frameworks.
  • Some experience developing Graph Neural Networks (GNNs), Graph Transformers, or foundation‑model architectures.
  • Familiarity with model training, fine‑tuning, evaluation, and deployment.
  • Understanding of uncertainty quantification, model robustness, and physics‑informed AI.
  • Experience with GPU computing and large‑scale model training.
  • Demonstrated ability to conduct independent research.

Preferred Knowledge, Skills, and Abilities

  • Familiarity with distributed computing, HPC environments, and cloud platforms.
  • Experience building production‑quality software and ML pipelines.
  • Familiarity with Git, CI/CD, containerization (Docker), and reproducible workflows.
  • Experience developing APIs and workflow orchestration systems.
  • Experience optimizing AI workloads for performance and scalability.
  • Basic knowledge of electric power systems, transmission/distribution networks, power flow, optimal power flow, contingency analysis, or grid planning.
  • Familiarity with tools such as PowerModels, MATPOWER, PSS/E, GridLAB‑D, OpenDSS, or similar.
  • Experience with mathematical optimization, mixed‑integer programming, stochastic optimization, or decision analytics.
  • Familiarity with Gurobi, CPLEX, Pyomo, JuMP, or related tools.
  • Experience with LLM‑based workflows, tool‑calling agents, MCP architectures, retrieval systems, or AI copilots.
  • Familiarity with multi‑agent systems and decision‑support applications.

Other Information

Candidates must have completed all degree requirements by the commencement of employment. BNL policy requires that after obtaining a Ph.D., eligible research associate appointments may not exceed a combined total of five years of relevant post‑doc and/or R&D experience, excluding time associated with family planning, military service, illness, or other life‑changing events.

The selected candidate must be able to obtain and maintain a DOE UPIV credential, as required by DOE Order 206.2 Chg. 2.

The base salary for this position ranges from $70,200 to $85,000 per year, commensurate with experience and peer group.

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