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Posted 10 days ago

Open

MTS - AI Physics & Simulations

San FranciscoOn-siteFull-time

AI Summary

Member of Technical Staff (Applied Scientist) at Collinear AI, building and deploying AI physics models for engineering simulation domains such as CFD, structural mechanics, and digital twins.

About this role

Collinear.AI is seeking a Member of Technical Staff (Applied Scientist) with deep expertise in engineering sciences to work at the frontier of AI-accelerated simulation. In this role, you will collaborate with customers and internal research teams to build, test, and deploy AI Physics Models.

You will contribute across the full stack: curating high-fidelity simulation datasets, training and evaluating physics-informed models, and delivering production-grade AI solutions directly to engineering teams. Key target domains include computational fluid dynamics (CFD), structural mechanics, semiconductor design, multi-physics modeling, and digital twins.

Working cross-functionally across research, product, and client-facing teams, you will ensure models meet rigorous real-world engineering standards—not just theoretical benchmark metrics.

Key Responsibilities

  • Execute Simulation Campaigns: Design and orchestrate large-scale simulation campaigns using domain-specific solvers (e.g., OpenFOAM, ANSYS, COMSOL, Abaqus).

  • Train & Validate Models: Train AI models on physics datasets and conduct rigorous evaluations of coverage, accuracy, and output quality against industrial validation standards.

  • Build Infrastructure & Tooling: Develop robust automated frameworks for dataset creation, simulation pipeline orchestration, and continuous model evaluation.

  • Integrate LLMs & Workflows: Architect agentic workflows and Retrieval-Augmented Generation (RAG) systems that seamlessly connect LLMs with engineering simulation pipelines.

  • Research Collaboration: Partner closely with the research team to analyze training runs, diagnose failure modes, and address data sparsity or architecture bottlenecks.

  • Technical Project Management: Lead research initiatives and manage technical communications with external engineering teams.

Core Qualifications

  • Education: Ph.D. or Master's degree in Machine Learning, Mechanical Engineering, Electrical Engineering, Computational Physics, Structural Mechanics, Semiconductor Engineering, or a related field.

  • Technical Mastery: Solid grounding in deep learning principles paired with a strong foundation in physics or engineering sciences.

  • Framework Proficiency: Hands-on experience implementing and training deep learning models.

  • Software Engineering: Demonstrated ability to write clean, maintainable Python in Linux and High-Performance Computing (HPC) environments.

  • Communication: Outstanding verbal and written communication skills, with the ability to explain complex technical concepts to both specialized engineers and non-technical stakeholders.

  • Ownership & Mindset: Self-directed operator who thrives with autonomy, maintains a low-ego approach to collaboration, and excels in fast-paced environments at the intersection of simulation and ML.

Preferred Qualifications

  • Hands-on industrial or academic experience with simulation solvers (e.g., OpenFOAM, ANSYS, COMSOL, Abaqus).

  • Direct experience applying machine learning to physics simulations or surrogate modeling (e.g., Neural Operators, Physics-Informed Neural Networks).

  • Track record of automating large-scale simulation workloads on HPC clusters.

  • Meaningful contributions to large-scale open-source projects or production codebases.

  • Published research in top-tier machine learning (NeurIPS, ICLR, ICML) or computational engineering conferences/journals.

  • Strong software engineering discipline, including static typing, unit testing, and CI/CD maintenance.

Skills

AbaqusAnsysCI/CDCOMSOLHPCLinuxLLMsNeural OperatorsOpenFOAMPhysics-informed Neural NetworksPythonRAGStatic TypingUnit Testing

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