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ML Ops Engineer

Galent

 

San Jose, CA, USA

Posted On: Just posted
Experience: 5+ years
Availability: Onsite
Openings: 2
Category: ML Ops Engineer
Tenure: No Preference/Any
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Description

You build, deploy, and maintain scalable machine learning systems across their full lifecycle.

This role is on-site.

Responsibilities

  • Design and manage automated data ingestion, transformation, and validation pipelines using Kubeflow and Vertex AI Pipelines.
  • Implement and containerize feature engineering logic for reusable and scalable datasets.
  • Integrate data validation processes using AI Agents or Generative Language APIs to detect and remediate quality issues.
  • Establish model versioning, containerize models with Docker, and build CI/CD workflows for automated deployment.
  • Configure and manage low-latency production serving environments using Vertex AI Endpoints for real-time inference.

Required Skills

  • 5+ years of professional experience in MLOps or related domains.
  • Strong experience with Google Cloud Platform (GCP) services, specifically Vertex AI, Kubeflow, Cloud Storage, and Artifact Registry.
  • Proven ability to design and implement end-to-end ML pipelines for data management, training, and deployment.
  • Hands-on experience with containerization technologies, specifically Docker.
  • Familiarity with CI/CD practices and pipeline automation.
  • Knowledge of ML frameworks like TensorFlow.
  • Experience with experiment tracking and hyperparameter tuning.

Education

Any Graduate

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