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Datamatics Technologies

Datamatics Technologies

AI Platform Operations Engineer

Full-Time
No salary listed
Mid
Bengaluru, Karnataka, India
In Person

About the job

Requirements
  • Minimum 3+ years of hands-on Microsoft Azure experience.
  • Strong experience with Azure AI Foundry, Azure OpenAI, and Azure AI Services.
  • Experience with Azure API Management and API exposure patterns.
  • Knowledge of Generative AI, Large Language Models, retrieval-augmented generation, and Agentic AI concepts.
  • Experience implementing AI guardrails, content filtering, and Responsible AI controls.
  • Familiarity with AI observability, monitoring, logging, and performance tracking.
  • Experience with Azure Monitor, Application Insights, Log Analytics, and Azure Cost Management.
  • Understanding of Azure security, role-based access control, managed identities, Key Vault, and networking concepts.
  • Strong troubleshooting, operational support, and stakeholder management skills.
  • Three to ten years of hands-on Azure administration and operations experience, including support of production cloud environments.
  • Operational knowledge of Azure AI Foundry, Azure OpenAI, Generative AI workload patterns, and agentic application operations.
  • Understanding of AI gateway/API Management, REST APIs, Model Context Protocol awareness, guardrails, content safety, prompt/model monitoring, and evaluation concepts.
  • Experience with Azure monitoring and observability services such as Azure Monitor, Log Analytics, and Application Insights.
  • Working knowledge of identity, managed identities, role-based access control, secrets management, private connectivity, security controls, quota management, and cost attribution.
  • Operational familiarity with API Management, Azure Event Hubs, Application Insights, Cosmos DB, and Azure Data Lake Storage Gen2.
  • Strong incident and problem management, stakeholder coordination, runbook preparation, and knowledge-transfer skills.
Responsibilities
  • Operate Azure AI platform services, including Azure AI Foundry, Azure OpenAI, and associated platform-level services.
  • Support onboarding of Nexus AI, Generative AI, and agentic workloads using approved landing-zone patterns, platform blueprints, governance gates, and release processes.
  • Support AI gateway and Large Language Model gateway/API Management exposure, including API connectivity, registration, and production-readiness checks.
  • Assist use-case teams with environment readiness, identity and access, network/API connectivity, deployment pre-checks, and post-deployment verification.
  • Ensure AI workloads and agents are onboarded with approved guardrails, content-safety controls, observability, quota controls, cost attribution, and use-case governance.
  • Support prompt/model monitoring, evaluation awareness, and AI observability; help validate dashboards, alerts, and operational health indicators.
  • Support integrations with Model Context Protocol/agent interfaces, data products, event streams, and operational data stores where applicable.
  • Track incidents, onboarding issues, risks, and dependencies; coordinate resolution with Microsoft, Client IT, CIS, Architecture, Data & AI, and use-case teams.
  • Maintain onboarding checklists, AI operational procedures, troubleshooting guides, governance evidence, and knowledge-transfer/handover materials.
  • Prepare AI/use-case onboarding checklists, platform monitoring and incident registers, security/governance evidence inputs, AI operational runbooks and troubleshooting guides, operational dependency records, and knowledge-transfer and handover packs.
Desired Qualifications
  • Experience with AI Gateway solutions, such as the Azure API Management AI Gateway or similar.
  • Knowledge of Prompt Flow, AI evaluations, and model benchmarking frameworks.
  • Experience with LangChain, LangGraph, Semantic Kernel, or AutoGen.
  • Exposure to MLOps, continuous integration/continuous delivery pipelines, GitHub Actions, and Azure DevOps.
  • Knowledge of Microsoft Purview, AI governance, and compliance frameworks.
  • Experience with vector databases, Azure AI Search, and retrieval-augmented generation architectures.
  • Familiarity with Kubernetes, Container Apps, or Azure OpenAI at enterprise scale.
  • Knowledge of quota planning, token consumption analysis, and FinOps practices for AI workloads.
  • Microsoft Azure Administrator Associate (AZ-104) certification is strongly preferred.
  • Azure AI Engineer Associate (AI-102) and Azure Solutions Architect Expert (AZ-305) certifications are preferred.
  • Google Cloud Associate Cloud Engineer certification is advantageous due to cross-cloud dependencies.

About the company

Datamatics Technologies

Datamatics Technologies

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