Assistant Computational Chemist / Chemical Engineer – Catalysis
Quick Summary
catalyst design mechanistic studies microkinetic modeling reactor modeling Strong computational expertise in applying quantum mechanical methods to deter
The Chemical Sciences and Engineering Division at Argonne National Laboratory invites applications for a regular, full-time Assistant Computational Chemist / Chemical Engineer position. The successful candidate will lead and contribute to computational research in electrocatalysis and heterogeneous catalysis, working closely with experimental collaborators to advance fundamental understanding and catalyst design.
This role involves conducting multiscale modeling, spectroscopy simulations, and the development of machine learning methods and automated workflows for multi-fidelity, multiscale, and multiphysics simulations. The research will be closely integrated with corresponding experimental efforts.
Responsibilities
~1 min read- →
Perform computational studies in electrocatalysis and heterogeneous catalysis
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Develop and apply multiscale modeling approaches to catalytic systems
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Conduct spectroscopy simulations, including techniques such as XANES, EXAFS, and Mössbauer spectroscopy
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Develop and implement machine learning methods and automated workflows for complex catalytic simulations
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Collaborate closely with experimental researchers to interpret results and guide catalyst development
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Contribute to proposal development and funding applications
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Mentor postdoctoral researchers and graduate students
Requirements
~1 min readPh.D. in physical chemistry, inorganic chemistry, computational materials science, chemical engineering, or a related field, along with 3–6 years of postdoctoral research experience
Comprehensive understanding of quantum mechanics and catalysis
Extensive experience in heterogeneous thermal catalysis and electrocatalysis, including:
catalyst design
mechanistic studies
microkinetic modeling
reactor modeling
Strong computational expertise in applying quantum mechanical methods to determine electronic structure, catalytic properties, and reaction mechanisms
Demonstrated experience in spectroscopy simulations, including XANES, EXAFS, and Mössbauer spectroscopy
Proficiency in Python and relevant computational platforms
At least 1–2 years of experience adapting and implementing AI/ML methods in catalysis, including:
machine learning interatomic potentials
agentic workflows
Experience in proposal writing and funding applications
Experience mentoring postdoctoral researchers and graduate students
Excellent written and oral communication skills
Ability to model Argonne’s core values of impact, safety, respect, integrity, and teamwork
Experience with PGM-free oxygen reduction reaction (ORR) catalysts
Experience with CO₂ reduction catalysis
RD2: Bachelors and 5+ years of experience, Masters and 3+ years, or PhD and 0+ years, or equivalent
Please note that the pay range information is a general guideline only. The pay offered to a selected candidate will be determined based on factors such as, but not limited to, the scope and responsibilities of the position, the qualifications of the selected candidate, business considerations, internal equity, and external market pay for comparable jobs. Additionally, comprehensive benefits are part of the total rewards package.
Click here to view Argonne employee benefits!
As an equal employment opportunity employer, and in accordance with our core values of impact, safety, respect, integrity and teamwork, Argonne National Laboratory is committed to a safe and welcoming workplace that fosters collaborative scientific discovery and innovation. Argonne encourages everyone to apply for employment. Argonne is committed to nondiscrimination and considers all qualified applicants for employment without regard to any characteristic protected by law.
Argonne employees, and certain guest researchers and contractors, are subject to particular restrictions related to participation in Foreign Government Sponsored or Affiliated Activities, as defined and detailed in United States Department of Energy Order 486.1A. You will be asked to disclose any such participation in the application phase for review by Argonne's Legal Department.
All Argonne offers of employment are contingent upon a background check that includes an assessment of criminal conviction history conducted on an individualized and case-by-case basis. Please be advised that Argonne positions require upon hire (or may require in the future) for the individual be to obtain a government access authorization that involves additional background check requirements. Failure to obtain or maintain such government access authorization could result in the withdrawal of a job offer or future termination of employment.
Location & Eligibility
Listing Details
- Posted
- April 25, 2026
- First seen
- May 5, 2026
- Last seen
- July 7, 2026
Posting Health
- Days active
- 0
- Repost count
- 0
- Trust Level
- 10%
- Scored at
- May 6, 2026
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