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Generative AI Engineer

Job in 500001, Hyderabad, Telangana, India
Listing for: Centrilogic
Full Time position
Listed on 2026-02-25
Job specializations:
  • IT/Tech
    AI Engineer, Cloud Computing
Job Description & How to Apply Below
AI Engineer – AI Managed Services & Development

About Centrilogic
Centrilogic is a global provider of  Cloud, Data, AI, and Managed Services . We help organizations modernize their systems, adopt secure and scalable AI/ML architectures, and operationalize intelligent platforms that drive measurable business outcomes.

Position Summary
The  AI Engineer – AI Managed Services & Development  is a production-focused engineering role responsible for  supporting, operating, and enhancing AI platforms and LLM-powered applications  built on  Microsoft Azure AI Foundry, Azure OpenAI, and the wider Azure ecosystem .
This position is centered around  AI Managed Services —ensuring reliability, security, performance, cost-efficiency, and governance of customer AI workloads—while also contributing to  light-to-moderate development and enhancement work in Python  to improve operational efficiency and enable continuous evolution of AI solutions.

Key Responsibilities

AI Managed Services Operations
Monitor and support AI agents, LLM workloads, vector/RAG pipelines, and microservices in production.
Maintain managed service expectations and SLAs across availability, performance, response times, and issue resolution.
Perform incident triage, troubleshooting, debugging, and root cause analysis (RCA).
Support model and prompt lifecycle activities: drift detection, prompt updates, embedding refresh, evaluation, and version control.
Apply Responsible AI practices including jailbreak protection, prompt injection defense, content filtering, and compliance guardrails.
Analyze telemetry, logs, metrics, and safety signals to proactively identify and mitigate risks.
Assist with onboarding new AI agents and use cases into Centrilogic’s Managed Services framework.
Contribute to runbooks, SOPs, and knowledge articles for operational excellence.

Development & Enhancement Work
Build small tooling, automations, scripts, and enhancements using  Python  to improve service reliability and speed.
Implement bug fixes, minor feature improvements, monitoring utilities, and workflow optimizations.
Integrate applications and services with Azure AI Foundry and Azure AI services.
Support safe deployments through CI/CD pipelines (Git Hub Actions or Azure Dev Ops) and environment promotion.

Azure Cloud & Platform Responsibilities
Operate AI workloads across  Azure Functions, App Services, containers/AKS, API Management, Azure AI Search , and data stores (e.g.,  Cosmos DB, Azure SQL ).
Implement and maintain platform observability: logging, tracing, alerting, cost monitoring, and operational analytics dashboards.
Support cloud security requirements including  Key Vault , managed identities,  RBAC/ABAC , encryption, private endpoints, and identity controls.
Follow best practices for scalability, resilience, and operational readiness.

Fin Ops & Operational Reporting
Monitor  token usage , compute cost, scaling patterns, and LLM consumption trends.
Provide recommendations for  cost optimization  and performance improvements.
Contribute input to Monthly Service Reviews (MSRs) and Quarterly Business Reviews (QBRs) with Service Delivery Managers.

Client Engagement & Collaboration
Communicate operational insights, incidents, and improvements in a clear, business-friendly manner.
Partner with  Cloud, Data, Security, and Development  teams to ensure stable and secure AI operations.
Participate in architecture reviews and operational readiness assessments for AI deployments.

Required Skills & Experience
3–5 years  of experience in application development, cloud operations, or production support (managed services experience is a plus).
Proficiency in  Python  for troubleshooting, tooling, automations, and minor feature updates.
Hands-on experience with:
Microsoft Azure AI Foundry
Azure OpenAI  and/or  Azure Cognitive Services
Azure App Services, Functions, containers/AKS (exposure acceptable), and API integrations
Logging/monitoring tools and platform observability concepts
Understanding of  RAG architectures , embeddings, vector databases, and prompt engineering fundamentals (practitioner-level familiarity).

Experience with  CI/CD  (Git Hub Actions or Azure Dev Ops) and cloud security best…
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