Added
12 days ago
Type
Full time
Salary
Salary not provided

Related skills

sql python databricks apache spark unity catalog

๐Ÿ“‹ Description

  • Senior MLOps engineer to build and scale ML infrastructure for production models.
  • Operationalize ML workflows across training, validation, deployment, monitoring, and retraining.
  • Collaborate with ML Scientists and engineers to productionize experimentation pipelines.

๐ŸŽฏ Requirements

  • 7+ years in MLOps/ML Engineering or closely related roles with production ML experience.
  • Proven drift detection, model calibration, monitoring, automated retraining, and ML infrastructure.
  • Hands-on Databricks suite experience: Databricks, Apache Spark, Unity Catalog, MLflow, feature
  • Experience with low-latency ML orchestration, including reinforcement learning approaches
  • Automation of ML training, validation, retraining, and deployment pipelines; strong CI/CD practices.
  • Programming in Python and SQL; processing large-scale data with Spark or similar.

๐ŸŽ Benefits

  • Opportunity to work on advanced ML infrastructure for dynamic pricing and personalization.
  • Exposure to Databricks, Spark, MLflow, Unity Catalog, feature stores, and RL workflows.
  • Ownership across the full ML lifecycle from training to monitoring.
  • Collaborative environment with ML Scientists and engineering teams.
  • Opportunities to build scalable automation and infrastructure improving reliability.
  • Competitive compensation and professional development opportunities.
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