ML for Disordered Materials Intern

Toyota Research Institute
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Job Description

At Toyota Research Institute (TRI), we’re on a mission to improve the quality of human life. We’re developing new tools and capabilities to amplify the human experience. To lead this transformative shift in mobility, we’ve built a world-class team in Robotics, Human-Centered AI, Human Interactive Driving, and Energy & Materials.

This is a Summer 2024 paid 12-week internship opportunity. Please note that this internship will be a hybrid in-office role.

The Team

The Energy and Materials Division at TRI is building tools to accelerate the design and discovery of new materials, fostering a transition to more sustainable mobility. Our research applies AI, data-driven methods, and automation to materials science, and spans the atomic to the device scales. Our projects often involve collaboration with scientists from universities and national labs. Interns will be involved in industrial research on topics of broader interest to the general materials science community, and several previous intern projects have resulted in peer-reviewed publications.

The Internship

Machine learning models have improved dramatically in recent years as surrogate models for DFT, but lack predictive capabilities that can be applied to representations of materials with partial occupancies, i.e. disordered materials, which comprise well over two-thirds of the solid materials in the international crystal structure database (ICSD). We aim to create a machine learning model architecture that can be applied to disordered materials in the same way that m3gnet, matlantis, chgnet, etc. have been applied to ordered materials. We then aim to benchmark the developed model towards the prediction of both functionality and synthesizability of disordered inorganic materials.

Qualifications

  • Applicant must be pursuing a doctorate in materials science, chemical engineering, mechanical engineering, physics, applied mathematics, computer science, other engineering, or related field
  • Experience in machine learning for solid inorganic materials, e.g. using or developing models like M3GNet, ALIGNN, CHGNet, etc
  • Collaborative open-source software development, e.g. contributing to pymatgen, ASE or development of independent software projects hosted on e.g. GitHub

Bonus Qualifications

  • Experience using cluster expansions, special quasi-random structure (SQS), coherent potential approximation (CPA), or similar methods targeted at materials with partial occupancies
  • Experience in DFT or other electronic structure methods
  • Translation of theoretical predictions into laboratory-synthesized materials, ideally for applications in batteries or fuel cells

Please add a link to Google Scholar and include a full list of publications when submitting your CV to this position.

The pay range for this position at commencement of employment is expected to be between $45 and $65/hour for California-based roles; however, base pay offered may vary depending on multiple individualized factors, including market location, job-related knowledge, skills, and experience. Note that TRI offers a generous benefits package including vacation and sick time. Details of participation in these benefit plans will be provided if an employee receives an offer of employment.

Please reference this Candidate Privacy Notice to inform you of the categories of personal information that we collect from individuals who inquire about and/or apply to work for Toyota Research Institute, Inc. or its subsidiaries, including Toyota A.I. Ventures GP, L.P., and the purposes for which we use such personal information.

Company Info.

Toyota Research Institute

At Toyota Research Institute (TRI), we’re working to build a future where everyone has the freedom to move, engage, and explore with a focus on reducing vehicle collisions, injuries, and fatalities. Join us in our mission to improve the quality of human life through advances in artificial intelligence, automated driving, robotics, and materials science. We’re dedicated to building a world of “mobility for all” where everyone, regardless of age or

  • Industry
    Artificial intelligence,Robotics company,Autonomous technology
  • No. of Employees
    350
  • Location
    Los Altos, CA, USA
  • Website
  • Jobs Posted

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