MLOps Engineer
Job Description
š§ Key Responsibilities:
⢠Design & implement end-to-end MLOps pipelines
⢠Build and manage scalable ML infrastructure on GCP
⢠Collaborate with Data Science, Data Engineering & DevOps teams
⢠Ensure seamless deployment, monitoring, and optimization of ML models
ā
Required Skills:
⢠5+ years in MLOps / ML Engineering
⢠Strong Python programming
⢠Hands-on with GCP services: Vertex AI, GKE, Cloud Run, BigQuery, Cloud Storage, Cloud Composer
⢠Experience with Docker & Kubernetes
⢠CI/CD pipelines (GitLab / Bitbucket)
⢠Terraform (Infrastructure as Code)
⢠ML frameworks: TensorFlow, PyTorch, Scikit-learn
⢠Data pipelines & processing (BigQuery, Dataflow, Dataproc, PySpark)
ā Nice to Have:
⢠Vertex AI Pipelines / Kubeflow
⢠Feature Store experience
⢠Generative AI & RAG exposure
⢠Model monitoring & drift detection
⢠Microservices & API development (Cloud Functions, Cloud Endpoints)
⢠GCP Certifications
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