Senior MLOps AIOps Engineer - MLflow GCP Vertex AI IBM Watsonx Terraform
Talentmate
India
21st October 2025
2510-3589-464
Job Description
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Job Description
Job Summary
We are seeking a Senior MLOps / AIOps Platform Engineer with deep DevSecOps expertise and hands-on experience managing enterprise-grade AI/ML platforms. This critical role focuses on building, configuring, and operationalizing secure, scalable, and reusable infrastructure and pipelines that support AI and ML initiatives across the enterprise. The ideal candidate will have a strong background in Infrastructure as Code (IaC), pipeline automation, and platform engineering, with specific experience configuring and maintaining IBM watsonx and Google Cloud Vertex AI environments.
Key Responsibilities
Platform Engineering & Operations
Lead the provisioning, configuration, and ongoing support of IBM watsonx and Google Cloud Vertex AI platforms.
Ensure platforms are production-ready, secure, cost-efficient, and performant across training, inference, and orchestration workflows.
Manage lifecycle tasks such as patching, upgrades, integrations, and service reliability.
Partner with security, compliance, and product teams to align platforms with enterprise and regulatory standards.
Enterprise MLOps / AIOps Enablement
Define and implement standardized MLOps/AIOps practices across business units for consistency and scalability.
Build and maintain reusable workflows for model development, deployment, retraining, and monitoring.
Provide onboarding, enablement, and support to AI/ML teams adopting enterprise platforms and tools.
Support development/deployment of GenAI applications and maintain them at an Enterprise scale.
DevSecOps Integration
Embed security and compliance guardrails across the ML lifecycle, including CI/CD pipelines and IaC templates.
Implement policy-as-code, access controls, vulnerability scanning, and automated compliance checks.
Ensure all deployments meet enterprise and regulatory requirements (HIPAA, SOX, FedRAMP, etc.).
Infrastructure as Code & Automation
Design and maintain IaC templates (Terraform, Pulumi, Ansible, CloudFormation) for reproducible ML infrastructure.
Build and optimize CI/CD pipelines for AI/ML assets including data pipelines, training workflows, deployment artifacts, and monitoring systems.
Enforce best practices around automation, reusability, and observability of infrastructure and workflows.
Monitoring, Logging & Observability
Implement comprehensive observability for AI/ML workloads using Prometheus, Grafana, Stackdriver, or Datadog.
Monitor both infrastructure health (CPU, memory, cost) and ML-specific metrics (model drift, data integrity, anomaly detection).
Define KPIs and usage metrics to measure platform performance, adoption, and operational health.
Qualifications
Education
Bachelor’s or Master’s degree in Computer Science, Engineering, or a related technical field.
Experience
5+ years in MLOps, DevOps, Platform Engineering, or Infrastructure Engineering.
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