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Luxoft

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Platform/DevOps Engineer

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Summary

Luxoft is hiring a Senior Platform/DevOps Engineer in Bucharest to design, build, and automate AWS cloud infrastructure and CI/CD pipelines for a financial-market-data client's Data Science and AI/ML platform. Core stack: AWS (EKS, SageMaker, Bedrock), Docker/Kubernetes with Helm, and GitLab CI/CD.

Project description

Our client is a global provider of financial market data, managing multiple change programs to deliver high-quality software that connects financial markets worldwide through real-time, high-frequency, low-latency data management systems. These projects are technically demanding and operate in a dynamic environment. The Markets and Corporate Engineering Divisions in our Client's company has embarked on a Data Science and AI/ML Transformation Program. The objective is to establish a new, centralized, and secure cloud-native platform Data Science and AI/ML on AWS to support modern application and infrastructure delivery.

Responsibilities

  • As a Senior DevOps Engineer , you will play a key role in designing, building, automating, and supporting cloud infrastructure and deployment pipelines across the Data Science and AI/ML platform.
  • Design, implement, and manage highly available, secure, and scalable AWS infrastructure using Infrastructure as Code (IaC).
  • Build, manage, and optimize CI/CD pipelines using GitLab (or equivalent tools) to enable automated application deployment.
  • Deploy, configure, and maintain containerized applications using Docker and Kubernetes.
  • Collaborate with development, architecture, and platform engineering teams to improve software delivery, reliability, and operational excellence.
  • Support migration of applications and services to AWS cloud infrastructure.
  • Implement security best practices, monitoring, logging, and disaster recovery strategies across cloud environments.

SKILLS

Must have

  • Strong experience in DevOps engineering (8+ years preferred) designing, building, automating, and supporting cloud infrastructure and deployment pipelines across the Data Science and AI/ML platform.
  • AWS - Strong hands-on experience with AWS services including SageMaker, Bedrock , EC2, VPC, IAM, S3, RDS and EKS,
  • Docker & Kubernetes - Strong experience containerizing applications using Docker. - Hands-on experience deploying and managing Kubernetes clusters (preferably Amazon EKS). - Experience with Helm charts, Kubernetes networking, ingress controllers, autoscaling, and rolling deployments.
  • GitLab CI/CD (or equivalent) - Strong experience designing and implementing CI/CD pipelines using GitLab CI/CD, Jenkins, GitHub Actions. - Experience implementing automated build, test, deployment, and release pipelines.

Nice to have

• Hands-on experience in using AI tools (e.g. GitHub Copilot) • Azure DevOps

Skills

See also

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