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AI DevOps Engineer - Active SC - 12 Months - Remote

Stealth IT ConsultingUnited Kingdom🇬🇧United KingdomPosted 27 Jul 2026

Why This Role Stands Out

This remote AI DevOps Engineer role offers exciting challenges in designing and automating cloud-native infrastructure for cutting-edge AI platforms. If you have strong experience with IaC, CI/CD, and cloud services, and thrive in a collaborative environment focused on innovation, you'll be well-suited to contribute to impactful projects. Embrace this opportunity to further develop your skills and advance your career within a reputable IT consulting firm.

Quick Overview

Work Type
Remote
Schedule
Temporary/Casual
Level
Mid Senior

Job Description

Job Title: AI DevOps Engineer
Rate: £525 (Inside IR35)
Duration: 12 Months
Location: Remote
Clearance: Active SC
Stages: 1 Stage

Key Responsibilities

  • Design, build and maintain cloud-native infrastructure supporting AI and Machine Learning platforms.
  • Develop and manage Infrastructure as Code (IaC) using Terraform, Bicep or ARM templates.
  • Build, maintain and optimise CI/CD pipelines for AI, data and application deployments.
  • Implement DevOps and MLOps best practices to automate model deployment, monitoring, retraining and life cycle management.
  • Deploy and support containerised applications using Docker and Kubernetes.
  • Automate cloud infrastructure provisioning across Azure and/or AWS environments.
  • Configure monitoring, logging and alerting solutions to ensure high availability and operational resilience.
  • Collaborate with Data Scientists, AI Engineers, Platform Engineers and Solution Architects to deliver production-ready AI solutions.
  • Implement security controls, identity management and secrets management aligned with Government security policies.
  • Support AI model governance through deployment automation, version control and auditability.
  • Optimise platform performance, scalability and cost across cloud services.
  • Develop automated testing, release management and rollback strategies.
  • Troubleshoot infrastructure, deployment and platform issues across development, test and production environments.
  • Contribute to technical documentation, knowledge sharing and engineering best practices.

Essential Skills & Experience

  • Strong commercial experience as a DevOps, Platform or Cloud Engineer.
  • Experience supporting AI, Machine Learning or Data Engineering platforms.
  • Strong knowledge of Azure and/or AWS cloud services.
  • Experience with Infrastructure as Code using Terraform, Bicep, ARM Templates or CloudFormation.
  • Experience with Azure DevOps, GitHub Actions or Jenkins.
  • Strong Kubernetes and Docker experience.
  • Experience implementing CI/CD pipelines for cloud-native applications.
  • Experience supporting container orchestration platforms.
  • Knowledge of MLOps principles and AI model deployment.
  • Experience with Git version control.
  • Strong Linux administration skills.
  • Experience implementing monitoring and observability using tools such as Azure Monitor, Prometheus, Grafana, ELK or Splunk.
  • Experience managing secrets and identities using Azure Key Vault or AWS Secrets Manager.
  • Knowledge of networking, IAM, RBAC and cloud security.
  • Experience working within Agile and DevSecOps environments.

Skills

Docker
AWS
ELK
MLOps
Machine Learning
Splunk
Agile
Azure
CloudFormation
Git
GitHub Actions
Grafana
Jenkins
Kubernetes
Prometheus
Terraform
Vault

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