Computer Systems Engineer 3 - Optimization and AI for Scientific Discovery

LBL$156K — $191K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's or Master's degree in Applied Mathematics, Statistics, Machine Learning, Computational Science, or related field with 6-8 years of experience or equivalent.
  • Strong background in machine learning, AI, numerical optimization, and programming.
  • Experience in the design, development, and application of agentic AI and optimization algorithms.
  • Familiarity with high-performance computing platforms and autonomous experimentation.
  • Exceptional analytical and Python programming skills.
  • Proven software project management and leadership ability in cross-functional teams.
  • Excellent communication skills for effective teamwork.

Responsibilities

  • Develop and deploy advanced AI and optimization tools for scientific applications.
  • Design, test, and benchmark agentic AI frameworks to enable automated discovery.
  • Optimize algorithms and software within high-performance computing environments.
  • Collaborate with multidisciplinary teams to solve complex research problems.
  • Publish software packages and contribute to academic research articles.
  • Lead software engineering teams in defining requirements and features.
  • Mentor junior staff and build strategic research partnerships.

Benefits

  • Five-year term appointment with potential to convert to a permanent position.
  • Access to a dynamic research environment at Lawrence Berkeley National Lab.
  • Opportunity to collaborate with experts across various scientific disciplines.
  • Involvement in cutting-edge research and technology advancements.
  • Possibility to publish work in peer-reviewed journals and contribute to impactful projects.
Full Job Description
Berkeley Lab's Applied Mathematics and Computational Research Division has an opening for a Computer Systems Engineer 3 - Optimization and AI for Scientific Discovery to develop and apply machine learning, agentic AI, optimization, and sampling tools to autonomous discovery. In this role, you will be part of the Applied Computing for Scientific Discovery (ACSD) Group, which focuses on enabling scientific discovery through advanced software applications, tools, and libraries across key Department of Energy (DOE) mission areas. You will play a key role within a multidisciplinary team combining elements of applied mathematics, optimization, statistics, machine learning, agentic artificial intelligence, and computational science to accelerate autonomous discovery and manufacturing scale-up.

As part of this dynamic team, you will develop, test, and benchmark new optimization models, active learning and sampling strategies, and design novel machine learning and agentic frameworks that close the feedback loop for automated discovery.

You will:
  • Develop, apply, and deploy advanced software tools for numerical optimization, active learning, machine learning, and artificial intelligence tailored to science and engineering domains.
  • Design, develop, test, benchmark, deploy, and tune agentic AI software frameworks and multi-fidelity optimization algorithms to close the feedback loop for automated scientific discovery.
  • Deploy, optimize, and tune algorithms and software developments within high-performance computing (HPC) environments.
  • Collaborate actively in a multidisciplinary team environment comprising scientists from energy technologies, physical sciences, mathematics, and computing.
  • Resolve complex research and engineering issues by analyzing variable factors and exercising judgment to select optimal methods, techniques, and evaluation criteria.
  • Publish developed algorithms as open-source software packages, maintain code documentation, and contribute to peer-reviewed journal articles and research proposals.
  • Coordinate and lead software engineering and science teams in defining system requirements, software features, user interfaces, and overall software development processes.
  • Mentor junior staff and developers while proactively establishing strategic partnerships with internal and external research teams to advance collaborative project goals.


We are looking for:
  • Education & Experience: Bachelor's degree in Applied Mathematics, Statistics, Machine Learning, Computational Science, or a related field with a minimum of 8 years of related experience; or a Master's degree with 6 years of related experience; or equivalent experience.
  • Core Technical Background: Strong, demonstrated background in machine learning, artificial intelligence, numerical optimization, and programming.
  • Framework & Algorithm Development: Demonstrated experience in the design, development, deployment, and application of machine learning, agentic AI, and multi-fidelity optimization algorithms.
  • Domain & HPC Experience: Proven experience developing software tools and algorithms for autonomous experimentation, inverse design, software optimization, or related domains, along with experience working on high-performance computing (HPC) platforms.
  • Analytical & Programming Skills: Demonstrated analytical skills critical for designing, deploying, and applying AI/ML/optimization algorithms, paired with excellent Python programming skills.
  • Leadership & Management: Experience with software project management and demonstrated experience leading cross-functional teams.
  • Communication & Teamwork: Excellent oral, written, and interpersonal communication skills, with the ability and desire to work effectively within an energetic cross-disciplinary team.
  • Multitasking: Proven ability to work effectively while balancing multiple competing priorities and tasks.


Desired skills/knowledge:
  • Master's degree with a minimum of 6 years of experience, or a Ph.D. with 4 years of experience, or equivalent experience preferred.


Additional information:
  • Application date: Priority consideration will be given to candidates who apply by August 14, 2026. Applications will be accepted until the job posting is removed.
  • Appointment type: This is a full-time, 5-year, term appointment with the possibility of conversion to Career appointment based upon satisfactory job performance, continuing availability of funds and ongoing operational needs.
  • Salary range: The expected salary for this position is $156,864 - $191,724 which fits into the full salary of $139,440 -$235,308 depending upon the candidate's skills, knowledge, and abilities. This includes education, certifications, and years of experience.
  • Background check: This position is subject to a background check. Any convictions will be evaluated to determine if they directly relate to the responsibilities and requirements of the position. Having a conviction history will not automatically disqualify an applicant from being considered for employment.
  • Work modality: Work will be primarily performed at: Lawrence Berkeley National Lab, 1 Cyclotron Road, Berkeley, CA. A REAL ID or other acceptable form of identification is required to access Berkeley Lab sites (for more information click here).


Want to learn more about working at Berkeley Lab? Please visit: careers.lbl.gov

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