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28 d agofound 5 d ago
Intern - ML for Computational Fluid Dynamics
What the posting is about
Internship at Destinus to apply machine learning and numerical optimization to improve Computational Fluid Dynamics for aerodynamic design. Collaborate with aerodynamics and ML teams to enhance unmanned vehicle design. Develop, evaluate, and deploy ML algorithms in the design pipeline. Familiarity with Gaussian processes, Bayesian optimization, and mathematical optimization required.
Read out of the posting
Levelintern
Experience askedNot stated
EmploymentFull time
LocationZürich, Zurich, Switzerland
RemoteNot stated
Visa sponsorshipNot stated
SalaryNot published, and most postings do not
Posted2026-09-07
Found viaworkable, direct from their system
We saw it 23 days after it went up.
The posting, as the company wrote it
Are you interested in applying machine learning (ML) and numerical optimization to improve Computational Fluid Dynamics (CFD) for aerodynamic design? Always wondered how ML can be applied to engineering? If you can dedicate to us at least 5 months, then this is your chance to join a world-leading team at the forefront of UAV design and:
Work at the intersection of the aerodynamics and ML teams to improve the design of our unmanned vehicles.
Research and develop ML and numerical algorithms to guide the CFD exploration of aerodynamic design space.
Evaluate your ideas on real-world test cases, assess the results, and present your findings and conclusions.
Implement and deploy the algorithms in our design pipeline.
Requirements
Familiarity with Gaussian processes and Bayesian optimization.
A desire to push the boundaries of ML for engineering and extend mathematical concepts with minimal supervision.
Hands-on experience in developing Python code for shared repositories: git, code reviews, continuous integration.
Knowledge of mathematical optimization concepts and algorithms, e.g., convex optimization, non-linear programming, etc.
Mindset to take ownership of your work and follow it from concept to final implementation. (Experience in research is a plus.)
Experience with CFD, large-scale simulations, and other ML is a plus.
Copied from Destinus’s own board, not rewritten. Original ↗
Also open at Destinus
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