📁
Research/Science
💼
ED-Energy Storage & Distributed R
📅
107048 Requisition #

The Career-Track Research Scientist in the Energy Technologies and Systems Division will conduct research on solar photovoltaic (PV) module degradation within the DOE CMEI DuraMat Program and lead the development of the group's open-source PV degradation analysis tools. This role includes developing physics-based and statistical methods for PV degradation analysis, building agentic AI systems for autonomous PV and materials data analysis, conducting independent research, contributing to funding proposals, and providing scientific leadership to junior staff. You will be eligible for PI status upon completing required training.

 

We’re here for the same mission, to bring science solutions to the world. Join our team and YOU will play a supporting role in our goal to address global challenges! Have a high level of impact and work for an organization associated with 17 Nobel Prizes!

 

Why join Berkeley Lab?

We invest in our employees by offering a total rewards package you can count on:

  • Exceptional health and retirement benefits, including pension or 401K-style plans

  • A culture where you’ll belong - we are invested in our teams! 

  • In addition to accruing vacation and sick time, we also have a Winter Holiday Shutdown every year.

  • Parental bonding leave (for both mothers and fathers)

  • Pet insurance 

 

You will:

  • Develop innovative solutions to complex PV degradation challenges, leading independent projects and contributing to multi-institutional research efforts.

  • Lead the development and technical direction of the group's open-source PV analysis tools (PVPRO, Vocmax) and the pvtools.lbl.gov platform, including new physics-based and data-driven degradation models.

  • Develop and apply physics-based, statistical, and machine learning methods to analyze PV degradation from operational and I–V data.

  • Build agentic AI systems and Python-based tools for autonomous PV and materials data analysis.

  • Conduct research within the DuraMat program, progressing to an independent research program by the Mid-Term Evaluation.

  • Publish peer-reviewed research, progressing to lead-author publications by the Mid-Term Evaluation.

  • Contribute to funding proposals and submit proposals by the Mid-Term Evaluation.

  • Present research at conferences and seminars, and report progress to DOE program managers.

  • Supervise and mentor junior staff and students.

  • Build and maintain collaborations across the research community.

 

Additional Responsibilities as needed:

  • Act as liaison between PIs / Scientists, other LBNL employees, and external contacts.

 

We are looking for:

  • Advanced degree in Electrical Engineering, Materials Science, Physics, or a related field, and 3–5 years of relevant  professional experience.

  • Excellent academic record and evaluations  

  • Demonstrated experience applying advanced principles, theories, and concepts to R&D problems in solar PV  analysis and degradation  

  • Demonstrated experience developing and maintaining open-source scientific software  

  • Significant experience programming in Python on both frontend (e.g., Plotly Dash) and backend (e.g., numpy,  scipy)  

  • Demonstrated experience preparing funding proposals, and independently planning and completing projects 

  • Proven record of publications and achievements, including lead-author publications on solar PV module  degradation analysis (e.g., circuit-model parameter extraction, I–V curve correction, degraded-system  power modeling) 

  • Ability to apply advanced principles, theories, and concepts to R&D problems in PV degradation analysis,  and to conduct creative research progressing toward independent direction 

  • Proficiency in Python (frontend and backend) and scientific computing 

  • General knowledge of solar photovoltaics, module degradation mechanisms, and PV performance  analysis (pvlib, rdtools) 

  • Prior experience with statistical data analysis and/or machine learning applied to scientific data 

  • Programmatic LLM usage within agentic frameworks 

  • Ability to collaborate effectively with a multidisciplinary team of scientists, industry partners, and  international collaborators 

  • Excellent verbal, written, and presentation skills 

  • Ability to work effectively both independently and in a team environment 

  • Excellent time management and ability to prioritize competing deadlines 

 

Desired skills/knowledge:

  • Ph.D. in Electrical Engineering, Materials Science, Physics, or a related field, and 3–5 years of relevant  professional experience 

  • Experience working in collaborative multi-lab teams

  • Frontend deployment and maintenance experience (e.g., Heroku, Google Analytics)

 

Requested Application Materials:

  • Curriculum Vitae.

  • Publication list

  • Statement of research experience and interests.

  • Names and contact information for at least three individuals who can write letters of reference

 

Internally posted until July 29, 2026.

 

The position will be exclusively available to current Berkeley Lab employees and those in layoff status with preferential rehire rights from Berkeley Lab until the date listed above. Current Berkeley Lab employees interested in a lateral transfer or promotional opportunity should apply online to be considered.

 

Additional information:

  • Application date: Priority consideration will be given to candidates who apply by July 29, 2026. Applications will be accepted until the job posting is removed.

  • Appointment type: This is a full-time, 1 year, career-track term appointment that may be renewed to a maximum of five years and that may be converted to career based upon satisfactory job performance, continuing availability of funds, and ongoing operational needs.

  • Salary range: The expected salary for this position is $145,524 - $159,168, which fits into the full salary of $94,740 - $227,376 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: This position will be performed on-site at Lawrence Berkeley National Lab, 1 Cyclotron Road, Berkeley, CA. 

  • Relocation: This position is not eligible for relocation assistance.

  • Work authorization: Candidates must be eligible to work in the U.S. at the time of hire. Visa sponsorship is not available for this position.

 

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

 

Equal Employment Opportunity Employer: The foundation of Berkeley Lab is our Stewardship Values: Team Science, Service, Trust, Innovation, and Respect; and we strive to build community with these shared values and commitments. Berkeley Lab is an Equal Opportunity Employer. We heartily welcome applications from all who could contribute to the Lab's mission of leading scientific discovery, excellence, and professionalism. In support of our rich global community, all qualified applicants will be considered for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, age, protected veteran status, or other protected categories under State and Federal law.

 

Misconduct Disclosure Requirement: As a condition of employment, the final candidate who accepts an offer of employment will be required to disclose if they have been subject to any final administrative or judicial decisions within the last seven years determining that they committed any misconduct; or have filed an appeal of a finding of substantiated misconduct with a previous employer. For additional information, click here.


 

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Berkeley Lab is an Equal Opportunity and Affirmative Action Employer. We heartily welcome applications from women, minorities, veterans, and all who would contribute to the Lab’s mission of leading scientific discovery, inclusion, and professionalism. In support of our diverse global community, all qualified applicants will be considered for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, age, or protected veteran status.

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The Lawrence Berkeley National Laboratory provides accommodation to otherwise qualified internal and external applicants who are disabled or become disabled and need assistance with the application process. Internal and external applicants that need such assistance may contact the Lawrence Berkeley National Laboratory to request accommodation by telephone at 510-486-7635, by email to eeoaa@lbl.gov or by U.S. mail at EEO/AA Office, One Cyclotron Road, MS90R-2121, Berkeley, CA 94720. These methods of contact have been put in place ONLY to be used by those internal and external applicants requesting accommodation.