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Machine Learning Engineer

Summary

Build and deploy production-grade ML systems, scaling models to handle real traffic while ensuring reliability and compliance with enterprise constraints.

Turn research models into scalable, production-ready systems that survive real traffic, real data drift and real audit.

What you’ll do

  • Take models from experiment to production service — packaging, serving, scaling and versioning them.
  • Build the evaluation and monitoring that tells you a model has quietly stopped working.
  • Engineer for the failure cases: latency budgets, fallback behaviour, and what happens when the model is wrong.
  • Work inside enterprise constraints — security review, change control, data residency — without losing velocity.
  • Review the work of others and raise the engineering standard around you.

What we’re looking for

  • Strong software engineering fundamentals; you write code others can maintain.
  • Experience deploying ML systems that real users depend on.
  • Comfort with containers, CI/CD and cloud infrastructure (AWS preferred).
  • Understanding of model evaluation beyond a single accuracy number.
  • Experience in a regulated environment is valued.
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