AI Scientist - Domain Expert Crashworthiness

United States Digital Space LLC

Paris

Presencial

EUR 90.000 - 150.000

Jornada completa

Hace 10 días
Generador de candidaturas

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Ventajas ofrecidas por este puesto de trabajo

Healthcare coverage
Parental leave
Retirement plans
Relocation support
Wellness programs
Meal allowance
Transportation allowance

Descripción de la vacante

Mistral AI is seeking a Domain Expert in crashworthiness simulations to develop AI-accelerated simulation capabilities for industrial engineering. You will combine solid mechanics expertise with machine learning within structural simulations to support real engineering use cases.

You will work across research, product, and customer-facing teams to ensure models meet industry standards, with focus on automotive, aerospace, and consumer electronics applications.

Formación

  • Master’s degree or equivalent technical depth in mechanical engineering, aerospace engineering, civil/structural engineering, computational mechanics, applied physics, or related field.
  • 4+ years of relevant industrial experience (or PhD +1 year) in automotive, aerospace, or consumer electronics.
  • Hands-on experience with explicit dynamics for crash or impact simulation and nonlinear FEM concepts.
  • Direct experience with simulation validation, correlation, model quality, and KPI definition.
  • Strong Python development for automation, data processing, and model evaluation; Git-based workflows and good documentation.
  • Experience in Linux and HPC environments; batch job submission and compute resource management.
  • Ability to operate in ambiguous environments and translate problems into datasets, experiments, and metrics.
  • Clear communication with technical and non-technical stakeholders.

Responsabilidades

  • Define, generate, and iteratively improve simulation datasets for training crashworthiness foundation models.
  • Design and run high-fidelity simulation campaigns using Abaqus, LS-DYNA, Ansys Mechanical, Radioss or equivalent tools.
  • Define the variation space for training data: geometry, mesh, material, boundary conditions, loading, and KPIs.
  • Build or guide automated pipelines for simulation setup, execution, post-processing, dataset creation, and evaluation.
  • Train and evaluate AI models on simulation data; diagnose failures from data gaps or artifacts.
  • Evaluate model outputs against engineering needs, including KPI alignment and out-of-domain behavior.
  • Collaborate with industrial customers to understand workflows and success criteria.

Conocimientos

Python
Git
Strong communication
Linux

Educación

Master’s degree

Herramientas

Abaqus
LS-DYNA
Ansys Mechanical
Radioss

Descripción del empleo

About MistralMistral

provides full-stack AI solutions: from frontier models to developer tools, applications, and compute. We partner with enterprises tackling the hardest problems across high-stakes industries like finance, manufacturing, defense, healthcare, and the public sector, co-creating customized AI systems that they can run on their terms.

We are a dynamic, collaborative team passionate about AI and its potential to transform society. Our diverse workforce thrives in competitive environments and is committed to driving innovation. Our teams are distributed between Europe, North America, Asia and the Middle East. We are creative, low-ego and team-spirited.

About the job

Mistral AI is looking for a Domain Expert in crashworthiness simulations to help build AI-accelerated simulation capabilities for industrial engineering.

You will work at the intersection of industrial simulation, physics modeling, machine learning, and engineering workflows. Your role is to bring deep solid-mechanics expertise into the design, training, evaluation, and deployment of AI Physics Models for real engineering use cases.

This is a hands-on technical role. We are looking for someone who understands industrial structural simulation not only conceptually, but through direct experience with simulation models, solver workflows, data generation, validation, and engineering decision-making.

You will work with research, product, and customer-facing teams to ensure that our models are useful against real engineering standards — not only benchmark metrics.

Relevant application areas may include automotive crashworthiness, aerospace structures, consumer-electronics drop/reliability, manufacturing, durability/fatigue, and other nonlinear structural mechanics problems.

What you will do

Work with our research team to define, generate, and iteratively improve simulation datasets for training and evaluating crashworthiness foundation models, balancing coverage of relevant physical scenarios, simulation fidelity, and computational cost.

  • Design and run high-fidelity simulation campaigns using structural mechanics solvers such as Abaqus, LS-DYNA, Ansys Mechanical, Radioss or equivalent tools.
  • Define the relevant variation space for training data: geometry, mesh resolution, material behavior, boundary conditions, loading, contact, joints, failure modes, and engineering KPIs.
  • Build or guide automated pipelines for simulation setup, execution, post-processing, dataset creation, and model evaluation.
  • Work with research teams to train and evaluate AI models on simulation data, and diagnose failure modes caused by data gaps, poor coverage, numerical artifacts, or model limitations.
  • Evaluate model outputs against industrial engineering needs, including field-level accuracy, scalar KPIs, deformation modes, load paths, energy absorption, stress/strain fields, failure indicators, uncertainty, and out-of-domain behavior.
  • Work with industrial customers to understand their simulation workflows and engineering priorities, define use cases and success criteria, and incorporate their feedback into model development and validation.
About you

You have deep expertise in crashworthiness, solid mechanics, and structural mechanics, with substantial experience in industrial simulation workflows.

  • You have a Master’s degree or equivalent technical depth in mechanical engineering, aerospace engineering, civil/structural engineering, computational mechanics, applied physics, or a related field.
  • You have 4+ years of relevant industrial experience (or PhD +1 years) in domains such as automotive, aerospace, and consumer electronics.
  • You have hands-on experience with explicit dynamics for crash or impact simulation and understand nonlinear FEM and related topics such as contact, plasticity, structural dynamics, buckling, material modeling, fracture/damage, fatigue, crashworthiness, or durability.
  • You have direct experience with simulation validation, correlation, model quality, numerical sensitivity, and engineering KPI definition.
  • You are a strong Python developer who can build and maintain reliable tools for simulation automation, data processing, and model evaluation. You apply sound software engineering practices, including version control with Git, automated testing, code review, and clear documentation.
  • You have hands-on experience working in Linux and HPC environments, including submitting and monitoring batch jobs, selecting appropriate compute resources, and troubleshooting simulation workflows. You can run simulation campaigns efficiently across a compute cluster.
  • You are comfortable operating in ambiguous technical environments and turning poorly defined industrial problems into scoped datasets, experiments, metrics, and execution plans.
  • You communicate clearly with both deep technical experts and non-specialist stakeholders.
It would be great if you

Have experience applying machine learning, surrogate modeling, reduced-order modeling, optimization, or data-driven methods to simulation problems.

  • Have contributed to reusable internal tools, open-source code, simulation automation frameworks, or production-quality engineering workflows.
  • Have experience working directly with industrial customers, product teams, or engineering decision-makers.
  • Have publications, patents, internal technical leadership, or recognized contributions in engineering, simulation, computational mechanics, or ML-for-physics communities.
What We Offer

We offer a comprehensive benefits package designed to support your well-being, growth, and work-life balance. Benefits vary by country and may include healthcare coverage, parental leave, retirement plans, relocation support, wellness programs, meal and transportation allowances, and other location-specific perks.

For the most up-to-date details on benefits available in your location, please refer to our Benefits page.

Privacy Policy

Your privacy matters to us. You can learn more about how we handle your personal data in our Applicant Privacy Policy.

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