Postdoctoral Research Associate — AI-Driven Reactive Robotics for Radioisotope Production

Posted Yesterday
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Upton, NY, USA
In-Office
72K-85K Annually
Junior
Artificial Intelligence • Energy • Defense
The Role
Develop an AI-driven dual robotic system combining a vision-language planner with a fast reactive controller for precision fluid handling in radioisotope production. Build 3D perception for fluid-state estimation, develop reactive control methods, validate on a cold bench, collaborate across robotics, radiochemistry, and ML communities, and publish results in peer-reviewed venues.
Summary Generated by Built In

The Isotope Research & Production (IP) program at Brookhaven National Laboratory has an opening for a postdoctoral researcher to develop an AI-driven robotic system for the chemical purification steps in radioisotope production. The scientific challenge is not “can a robot move a beaker,” which is largely solved, but the open problem underneath it: fast, reactive fine-motor manipulation of fluids, precision pipetting, and pouring that corrects in real time when liquid begins to slosh or spill; coupled to a frontier vision-language model that plans and supervises the multi-step workflow. The successful candidate will have wide latitude to shape the research direction and will publish contributions to reactive, generalizable robotic manipulation in unstructured laboratory environments.

This position sits at the intersection of a mission-driven isotope-production program and frontier machine learning, and has a high level of interaction with an interdisciplinary scientific community spanning robotics, radiochemistry, and computing.

Essential Duties and Responsibilities:

  • Design and build a dual-system robotic architecture: a frontier vision-language model for task planning, affordance reasoning, and anomaly/stop-gating, coupled to a fast learned controller for reactive fine-motor manipulation.

  • Develop the fast reactive control layer using an approach matched to your background (e.g. force-feedback MPC with a learned motion prior, latent world models, imitation/vision-language-action policies, or continuous-time neural control).

  • Build the 3D perception stack for fluid-state estimation (fill level, meniscus, vessel pose) through transparent, reflective glassware, using pretrained visual encoders.

  • Develop and validate on a cold bench (water and glassware) before any active material.

  • Publish results in peer-reviewed venues and present at conferences.

Required Knowledge, Skills, and Abilities:

  • Ph.D. in mechanical engineering, electrical engineering, computer science, physics, mathematics, statistics/data science, or a closely related technical field

  • Backgrounds in robotics, controls, or machine learning are especially relevant.

  • Strong programming skills in Python and hands-on experience with modern ML frameworks (e.g. PyTorch).

  • Hands-on problem-solving skills and clear, concise written and verbal communication.

  • Demonstrated record of peer-reviewed publication.

  • Ability to work independently and drive an open-ended, high-risk/high-reward research agenda.

Preferred Knowledge, Skills, and Abilities:

  • Experience in one or more of: robotic manipulation, reinforcement learning, imitation learning, world models, model-predictive/optimal control, or continuous-time dynamical systems.

  • Demonstrated record of peer-reviewed publication, ideally as a lead (first or primary) author.

  • Experience with collaborative robot arms (e.g. UFactory xArm) and force/torque sensing.

  • Experience with vision-language(-action) models, diffusion/flow-matching policies, or JEPA-style latent representations.

  • Familiarity with 3D vision and pretrained visual encoders (e.g. DINOv2, V-JEPA).

  • Interest in or exposure to laboratory automation, chemistry workflows, or radiochemistry.

  • Track record of conference presentation.

Environmental, Health & Safety Requirements:

Work is performed initially on a non-radioactive cold bench (water and glassware). Work with active material is a later project phase and would require applicable radiological worker training and adherence to BNL radiological control and laboratory safety procedures.

Other Information:

  • This position is located at BNL in Upton, New York.

  • Initial 2-year term appointment subject to renewal contingent on performance and funding.

  • BNL policy requires that after obtaining a PhD, eligible candidates for research associate appointments may not exceed a combined total of 5 years of relevant work experience as a post-doc and/or in an R&D position, excluding time associated with family planning, military service, illness or other life-changing events.

  • Candidates must have completed all degree requirements by the commencement of the employment.

  • Please submit a cover letter and CV (including a list of publications).

Brookhaven National Laboratory is committed to providing fair, equitable and competitive compensation. The full salary range for this position is $71900 - $85000 / year. Salary offers will be commensurate with the final candidate’s qualification, education and experience and considered with the internal peer group.


Brookhaven National Laboratory is committed to employee success and we believe that a comprehensive employee benefits program is an important and meaningful part of the compensation employees receive. Review more information at BNL | Benefits Program


Brookhaven National Laboratory requires all non-badged personnel including visitors to produce a REAL-ID or REAL-ID compliant documentation to access Brookhaven National Laboratory – view more information at www.bnl.gov/real-id.  This is due to nationwide identification requirements for federal site access as required by the federal REAL ID Act.  Those not in possession of a REAL ID-compliant document will not be permitted to access the site which includes access to the Laboratory for interviews


As a U.S. Department of Energy laboratory, Brookhaven National Laboratory requires employees to obtain and maintain a DOE Uncleared Personal Identity Verification (UPIV) credential in accordance with Homeland Security Presidential Directive 12 (HSPD-12) requirements. The credentialing process is completed as part of onboarding and enables access to DOE facilities and information systems. As a condition of employment, the selected candidate must be able to obtain and maintain a UPIV credential. These requirements are established under DOE Order 206.2 Chg. 2, Identity, Credential, and Access Management (ICAM- Identity, Credential, and Access Management (ICAM)), and DOE Order 473.1A- Physical Protection Program- Physical Protection Program.


About Us

Brookhaven National Laboratory (www.bnl.gov) delivers discovery science and transformative technology to power and secure the nation’s future. Brookhaven Lab is a multidisciplinary laboratory with seven Nobel Prize-winning discoveries, 37 R&D 100 Awards, and more than 70 years of pioneering research. The Lab is primarily supported by the U.S. Department of Energy’s (DOE) Office of Science. Brookhaven Science Associates (BSA) operates and manages the Laboratory for DOE. BSA is a partnership between Battelle and The Research Foundation for the State University of New York on behalf of Stony Brook University. BSA salutes our veterans and active military members with careers that leverage the skills and unique experience they gained while serving our country, learn more at BNL | Opportunities for Veterans at Brookhaven National Laboratory.


Equal Opportunity/Affirmative Action Employer


Guided by our core values of integrity, responsibility, innovation, respect, and teamwork, Brookhaven Science Associates is an Equal Employment Opportunity Employer-Vets/Disabled. We are committed to fostering a respectful and collaborative environment that fuels scientific discovery. We consider all qualified applicants without regard to any characteristic protected by law. All qualified individuals are encouraged to apply. We ensure that individuals with disabilities are provided reasonable accommodation to participate in the job application or interview process, to perform essential job functions, and to receive other benefits and privileges of employment. Please contact us to request accommodation.  *VEVRAA Federal Contractor


BSA employees are subject to restrictions related to participation in Foreign Government Talent Recruitment Programs, as defined and detailed in United States Department of Energy Order 486.1A. You will be asked to disclose any such participation at the time of hire for review by Brookhaven. The full text of the Order may be found at: https://www.directives.doe.gov/directives-documents/400-series/0486.1-BOrder-a/@@images/file

Skills Required

  • Ph.D. in mechanical engineering, electrical engineering, computer science, physics, mathematics, statistics/data science, or closely related field
  • Strong programming skills in Python
  • Hands-on experience with modern ML frameworks (e.g., PyTorch)
  • Background in robotics, controls, or machine learning
  • Demonstrated record of peer-reviewed publication
  • Hands-on problem-solving skills and clear written and verbal communication
  • Ability to work independently and drive an open-ended, high-risk/high-reward research agenda
  • Candidates must have completed all degree requirements by the commencement of employment
  • Ability to obtain and maintain a DOE UPIV credential (identity credential) as a condition of employment
  • Possess REAL-ID or REAL-ID compliant documentation for site access (required for interviews and lab access)
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The Company

What We Do

Brookhaven National Laboratory (BNL) is a U.S. Department of Energy national laboratory conducting fundamental and applied research in nuclear and particle physics, photon sciences, energy security, quantum and information science, and artificial intelligence. BNL operates large user facilities and partners with academia and industry to translate scientific discoveries into technologies and programs supporting energy, national security, and public-benefit applications.

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