Senior Simulation Data Engineer at Physicsx
- Company: Physicsx
- Location: London
- Employment type: full-time
- Posted: 2026-08-10
About us
Note: We are currently recruiting for multiple positions, however please only apply for the role that best aligns with your skillset and career goals.
The Role
The Senior Simulation Data Engineer will extend and operate the infrastructure that powers our research Data Factory. You will be responsible for the end-to-end pipeline: from geometry preparation and simulation orchestration through validation, post-processing, and delivery to downstream ML training systems, using PhysicsX platform orchestration services where synergies exist.
This role sits at the intersection of HPC engineering and data engineering. You will orchestrate long-running CFD simulations at scale, build robust data pipelines, and ensure that every simulation we produce meets rigorous quality standards.
Team Context
In this role, you will be vertically embedded in Research , working daily with:
- Research Scientists who define data requirements and quality standards
- ML Engineers who consume Data Factory outputs for model training
- ML Infrastructure Engineers who are accountable for downstream training infrastructure
You will have end-to-end responsibilities over the Data Factory, with the autonomy to make architectural decisions and the responsibility to keep data flowing reliably.
Horizontally, you will be part of an infrastructure engineering group responsible for infrastructure across the company.
What you will do
Simulation Orchestration
- Extend and operate the Data Factory infrastructure that orchestrates thousands of CFD simulations per day on cloud compute
- Design and operate job scheduling systems that maximize throughput while handling failures gracefully
- Build monitoring and alerting to detect simulation failures, convergence issues, and resource bottlenecks early
Data Pipeline Engineering
- Build high-performance data pipelines that move simulation outputs from solver results to ML-ready training data
- Implement geometry preprocessing workflows (mesh preparation, morphing, watertightness validation)
- Design and operate post-processing pipelines: surface decimation, field interpolation, format conversion
- Optimize I/O performance for large mesh datasets
Data Quality and Validation
- Implement comprehensive validation checks at every pipeline stage: solver convergence, physical field bounds, post-processing fidelity
- Build systems that capture and quarantine bad data before they reach training pipelines
- Track and report data quality metrics across the entire Data Factory
- Work towards full provenance: training samples should be traceable back to their source geometry and simulation configuration
Integration and Delivery
- Deliver validated datasets to downstream ML training infrastructure in formats optimized for efficient data loading
- Design data versioning and cataloging systems that support reproducible training runs
- Work closely with ML Infrastructure Engineers to ensure smooth handoff between data production and model training
- Support multi-dataset training workflows
What you bring to the table
- Ability to scope and effectively deliver projects, prioritising activity as needed.
- Problem-solving skills and the ability to analyse issues, identify causes, and recommend solutions quickly.
- Excellent collaboration an
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