Research Scientist Large Model Training Research Paris · Hybrid

NP Complete

Paris

Sur place

EUR 110 000 - 150 000

Plein temps

14 jours+
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Résumé du poste

NP Complete in Paris seeks engineers to design and scale training workflows for physics foundation models, enabling real-time iteration across fluid dynamics, structural mechanics, and electromagnetics.

You will work on distributed training, monitoring loops, and data alignment, aiming to push engineering toward real-time feedback and industrial-scale products.

Qualifications

  • PhD or equivalent research experience required.
  • Advanced proficiency in Python and deep learning frameworks, especially PyTorch.
  • Strong interest in physics or numerical simulation is a plus.
  • Mindset to move from theoretical research to industrial-scale products.

Responsabilités

  • Design large-scale training curricula and data mixtures for physics foundation models.
  • Optimize distributed training, focusing on throughput, stability, mixed precision, and scaling laws.
  • Create monitoring and evaluation loops to detect regressions and data drift.
  • Collaborate with simulation engineering to align data generation with model needs.

Connaissances

Python
Numerical simulation

Formation

PhD or equivalent research experience

Outils

PyTorch
Deep learning frameworks

Description du poste

Engineering progress is constrained by the speed of simulation. In aerospace, energy, and other safety-critical industries, design cycles are still governed by solvers built for a different era, accurate, but slow and costly, and fundamentally incompatible with real-time decision-making. Augur AI exists to change that constraint.

Founded by Emmanuel and Matthieu, both former researchers at Inria working on AI powered simulation, Augur is building foundational AI models for physical simulation. By combining advances in large-scale model architectures with modern compute, we enable real-time iteration across fluid dynamics, structural mechanics, and electromagnetics, without sacrificing physical fidelity.

We want to push engineering towards real time feedback loops. We want Aircraft components to be optimized aerodynamically in real time. Wind farm layouts to be explored interactively to maximize energy yield. Thermal stress in nuclear infrastructure to be anticipated before it becomes a limiting factor. These will come as the natural consequence of the faster physics simulation we are building.

We are deeply embedded in the European research ecosystem, backed by engineers and founders from organizations including Mistral AI, Dataiku, and DeepMind. As we scale our technology into real-world industrial deployments, we are looking for engineers who want to work at the boundary between frontier AI and the most demanding physical systems on earth. We want to become the new technology layer of modern engineering. Our ambition is global, our first office is in Paris, France.

Your Mission

Design and scale training workflows for large physics foundation models, ensuring reliable performance as datasets, models, and compute grow.

  • Training Strategy: Design large-scale training curricula and data mixtures for physics foundation models.
  • Distributed Systems: Optimize distributed training (throughput, stability, mixed precision, scaling laws).
  • Evaluation Loops: Create monitoring and evaluation loops to detect regressions and data drift.
  • Data Alignment: Collaborate with simulation engineering to align data generation with model needs.
Your Profile
  • Education: You have a PhD or equivalent research experience and have spent significant time training large foundation models.
  • Programming: Advanced proficiency in Python and deep learning frameworks, specifically PyTorch.
  • Scientific Interest: A strong interest in physics or numerical simulation is a plus, even if your primary background is in pure AI.
  • Mindset: You are a builder who enjoys moving from theoretical research to functional, industrial-scale products.
Why Join Us?
  • Culture: Small team of committed top scientists and engineers in their field.
  • High Impact: Join a founding team where your work directly shapes the product and its deployment with global leaders. Work on physical AI that delivers immediate, real-world value, making planes, windfarms, and nuclear plants more efficient and sustainable.
  • Frontier AI: Work at the intersection of Generative AI, High-Performance Computing, and complex physics.
  • Direct Influence: As one of our first Engineers, you will have a massive say in our roadmap and how our user interface evolves to meet engineering needs.
  • Momentum: Join us at a key turning point as we scale from technical validation to major commercial expansion.
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