Systems Engineer - Simulation Correctness

Vinci AI

$120K — $150K *
Aerospace & Defense
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Prior experience using or building physics simulators (FEM, FEA, Molecular Dynamics, FDTD)
  • Experience as a systems engineer in a collaborative production environment
  • Basic understanding of solver mechanisms (Numerical Optimization, Convergence Criteria, Dampening approaches)
  • Working knowledge of machine learning basics (back prop, loss functions, generators, embeddings, transformer models)
  • Understanding of statistics and data science methods (Confidence intervals, uncertainty quantification, Bayes method)

Responsibilities

  • Validate simulation systems to ensure empirical results.
  • Evaluate techniques developed by Machine Learning and Solver teams.
  • Build runtime evaluation mechanisms to maximize customer value.
  • Create data-driven arguments for the evaluation mechanism.
  • Collaborate with software engineers to implement designs.
  • Interface with teams of Physicists, AI researchers, Software Engineers, and Computational Geometry experts.

Benefits

  • Collaborative working environment with deep technical experts.
  • Opportunity to influence new simulation methodologies.
  • Engagement in innovative projects at the intersection of AI and physics.
  • Potential for career development in cutting-edge technology fields.
Full Job Description
What You Will Do

Your north star will be the guaranteed (empirical) validation of simulation systems.

In this role you will use and evaluate the cutting edge solutions developed by our Machine Learning and Solver teams. Ensure that our customers receive the highest value results by building a runtime evaluation mechanism. Develop a compelling data driven argument for this mechanism. Work with software engineers to implement your designs and demonstrate validity.

You will sit at the interface of teams of Physicists, AI researchers, Software Engineers and Computational Geometry experts. You are comfortable working with deep technical experts and bringing your own expertise to bear.

What We're Looking For

Qualifications;
  • Prior experience using or building physics simulators
    • FEM, FEA, Molecular Dynamics, FDTD
  • Experience as a systems engineer in a production environment
    • working with Scientists and Engineers in a collaborative setting
  • Basic understanding of solver mechanisms;
    • Numerical Optimization, Convergence Criteria, Dampening approaches
  • Working knowledge of ML basics
    • back prop, loss functions, generators, embeddings, transformer models
  • Understanding of statistics and data science methods
    • Confidence intervals, uncertainty quantification, Bayes method

We are very excited to talk with you if you have
  • Worked as a Systems Engineer for a production Software Solution in any of;
    • Robotics, Chip Manufacturing, Aerospace
  • Have leveraged simulation for design or data generation purposes.
  • Have experience delivering solutions when needed
  • Have worked on validation solutions for a production ML system


Engineering Expectations
  • Software engineering fundamentals
    • Understanding of CI, regression testing, and validation discipline
  • Excellent communication and documentation skills
  • Comfortable running thousands of simulations and finding a needle in the haystack failure.
  • Capable of defining an architecture with sufficient detail an Engineer could implement it with few open questions.


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