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Senior MLOps Engineer

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Role Overview

  • Build and own the infrastructure and pipelines used to train, evaluate, package, deploy, and operate machine learning models in production.

  • Develop reliable MLOps capabilities across experiment tracking, model and data versioning, reproducibility, orchestration, automated testing, monitoring, and controlled model rollouts.

  • Partner with Data Science, Engineering, and Infrastructure teams to productionize models and continuously improve the scalability, reliability, observability, and cost efficiency of our ML platform.

What We’re Looking For

  • 5–7+ years of experience in Machine Learning Engineering, MLOps, ML Infrastructure, Platform Engineering, or a related production engineering role.

  • Strong hands-on experience with Python, cloud infrastructure, Docker, Kubernetes, CI/CD, infrastructure-as-code, workflow orchestration, and production observability.

  • Proven experience building and operating production ML systems, including training pipelines, experiment tracking, model registries, versioning, monitoring, data-quality checks, staged deployments, and rollback mechanisms.

  • Experience managing GPU-based training workloads and/or distributed training infrastructure, and cloud cost optimization.

  • Experience working in a fast-growing startup, with the ability to operate in a dynamic, fast-paced environment.

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