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SO MLOps Integration Engineer, GMET

Central Region (City Area)💼 Full-time🗓 2026-08-31 → 2026-09-26

Core

Design, develop, and maintain MLOps pipelines for training, deployment, monitoring, and retraining of machine learning models within enterprise systems.

Role type

Senior IC MLOps Integration Engineer

Builds

Scalable ML workloads and integrated model pipelines for enterprise applications

Domain

Financial services / Machine Learning Operations

Deliverable

production ML models

Required skills

Python, MLOps platforms (MLflow, Kubeflow, Sagemaker, Azure ML, Vertex AI), containerization (Docker, Kubernetes), cloud platforms (AWS, Azure, GCP), CI/CD tools (Jenkins, GitLab CI, Azure DevOps), data engineering (SQL, Spark, Kafka), ML lifecycle management

Preferred skills

Financial services industry experience

Technologies

Docker, Kubernetes, AWS, Azure, GCP, MLflow, Kubeflow, Sagemaker, Azure ML, Vertex AI, Jenkins, GitLab CI, Azure DevOps, SQL, Spark, Kafka

Responsibilities

Design and maintain MLOps pipelines; Implement infrastructure for scalable ML workloads; Collaborate with data scientists and IT ops; Develop automated testing and CI/CD strategies; Establish monitoring and alerting systems; Troubleshoot deployment issues; Ensure compliance with security policies; Research new MLOps tools; Document processes and architectures

Seniority

Senior, hands-on IC

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