Job Description

Key Responsibilities

  • Maintain and enhance existing ML pipelines in On Premise with a focus on infrastructure as code.
  • Implement minimal but essential pipeline extensions to support ongoing data science workstreams.
  • Convert the Data Science notebooks into production ready deployable components.
  • Build ML pipelines for training, inference, monitoring.
  • Document infrastructure usage, architecture, and design using tools like Confluence, GitHub Wikis, and system diagrams.
  • Act as the internal infrastructure expert, collaborating with data scientists to guide and support ML model deployments.
  • Research and implement optimization strategies for ML workflows and infrastructure.
  • Work independently and collaboratively with cross-functional teams to support ML product

Key Responsibilities

  • Lead the design, development, and management of robust ML pipelines and infrastructure ...

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