DevOPs Engineer
Listed on 2026-09-11
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IT/Tech
Cloud Computing: Infrastructure & Operations, SRE/Site Reliability, Azure
Job order - J - Permanent Full Time
Title DevOPs Engineer
Category Software Development/ Engineering
City Plano, Texas, United States
Job Description
CGI is seeking an experienced Azure Dev Ops Engineer to design, implement, automate, and support secure, scalable cloud infrastructure and software delivery pipelines within the Microsoft Azure ecosystem.
This is a hands, on engineering role responsible for enabling development teams to build, test, deploy, and operate applications efficiently and reliably. The ideal candidate has strong experience with Azure, CI/CD, Infrastructure as Code (IaC), containerization, Kubernetes, security, monitoring, and automation, and is comfortable supporting modern application, data, and AI workloads.
The Azure Dev Ops Engineer will partner closely with software engineers, AI engineers, data engineers, architects, cybersecurity teams, and product teams to establish Dev Ops standards, automate delivery processes, improve developer productivity, and maintain reliable cloud environments.
This role is located in Plano, TX.
Mandatory Skills- Deep hands on experience with Microsoft Azure, including AKS, Container Apps or App Service, Azure Functions, API Management, Key Vault, Storage, and core networking
- Proven experience provisioning and managing cloud infrastructure declaratively using Terraform and/or Bicep/ARM, with reusable modules, state management, and environment promotion strategies.
- Strong experience building, hardening, and deploying containerized workloads on Kubernetes/AKS, including Helm charts, resource tuning, horizontal and cluster autoscaling, and ingress configuration.
- Experience designing and maintaining multi stage CI/CD pipelines in Azure Dev Ops or Git Hub Actions, covering build, test, security gates, artifact management, and progressive deployment (blue green or canary).
- Proficiency in Python for automation, tooling, and operational scripting. Ability to read and debug application code written by the engineering team.
- Hands on experience with Azure Monitor, Application Insights, and Log Analytics (KQL), and/or Prometheus, Grafana, and Open Telemetry. Ability to instrument distributed systems and establish actionable alerting.
- Experience deploying and operating GenAI and agentic workloads in production, Azure OpenAI or Azure AI Foundry, model and prompt versioning, evaluation and regression pipelines, vector database operations, and monitoring of token usage, latency, and inference cost.
- Working experience with Databricks and MLflow for model lifecycle management, and comfort supporting data infrastructure such as Delta Lake, PostgreSQL, MongoDB, and streaming platforms including Kafka or Event Hubs.
- Practical experience with Microsoft Entra , managed identities, RBAC, secrets and certificate management, Dev Sec Ops scanning, and network isolation patterns for sensitive workloads.
- Proven experience operating large production applications, including capacity planning for high concurrency workloads, defining SLOs, incident response, and optimizing compute and inference spend.
- Demonstrated ability to deliver in short iteration cycles alongside rapidly evolving requirements, balancing speed with the platform stability and guardrails that production AI systems require.
- Excellent problem solving abilities, attention to detail, ownership under ambiguity, and strong communication skills across engineering, data science, and business stakeholders.
- Agentic Frameworks:
Familiarity with Lang Chain/Lang Graph, Semantic Kernel, or Model Context Protocol (MCP), and the operational patterns of multi agent and tool calling systems. - Git Ops:
Experience with ArgoCD or Flux for declarative, Git driven cluster management. - API Layer:
Exposure to Istio, Linkerd, or equivalent,…
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