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MLOps & Devops Engineers

Job in Riyadh, Riyadh Region, Saudi Arabia
Listing for: Devoteam Middle East
Full Time position
Listed on 2026-08-19
Job specializations:
  • IT/Tech
    Cloud Computing: Infrastructure & Operations, Data Engineering, AI Engineer (Applied/Software), SRE/Site Reliability
Salary/Wage Range or Industry Benchmark: 240000 - 420000 SAR Yearly SAR 240000.00 420000.00 YEAR
Job Description & How to Apply Below

We are seeking a highly skilled Dev Ops MLOps Engineer to bridge the gap between data science research and AI engineering to ensure smooth SDLC delivery You will be responsible for designing implementing and maintaining the infrastructure and automated pipelines that allow our teams to build deploy and monitor modern AI platforms and RAG pipelines at scale This role requires a deep understanding of cloud infrastructure CI CD practices and the unique challenges associated with the machine learning lifecycle

Key Responsibilities Infrastructure and Automation
  • Design and manage scalable cloud infrastructure on Google Cloud Platform GCP using Terraform with a focus on GKE clusters firewalls and network policies
  • Develop and maintain full SDLC CI CD pipelines using Git Hub Actions integrating Renovate for dependency management Sonar for code quality and Artifactory for binary management
  • Optimize system performance and implement cost-saving measures across cloud environments
  • Build and automate end-to-end ML pipelines on Vertex AI specializing in RAG architectures and automated data ingestion into Qdrant databases
  • Implement and manage evaluation pipelines to measure and improve the performance of LLM-based systems and agentic workflows
  • Establish automated deployment strategies for ML models e g A B testing Canary deployments
Monitoring and Reliability
  • Develop comprehensive monitoring and alerting systems to ensure the health of production models and infrastructure
  • Implement data and model drift detection to maintain the accuracy of deployed models over time
  • Collaborate with security teams to ensure compliance and data privacy throughout the ML lifecycle
  • Integrate and maintain observability tools such as Langfuse Open Telemetry and Prometheus to enhance system transparency and debugging for ML pipelines and LLM applications
  • Utilize distributed tracing and logging to identify bottlenecks and optimize performance across microservices and agentic workflows
Experience
  • Experience:

    3+ years in Dev Ops, SRE, or MLOps roles.
  • Cloud Platforms:
    Proficiency in Google Cloud Platform (GCP).
  • Containerization:
    Advanced knowledge of Docker and Kubernetes (GKE).
  • Automation:
    Expertise in Python, Git Hub Actions, Renovate, Sonar, Artifactory, Argo CD, and Helm charts.
  • Data Tools:

    Experience with SQL, No

    SQL databases, and data orchestration (Airflow).
Preferred Skills
  • Preferred

    Skills:

    Experience with Vertex AI, RAG pipelines, Qdrant, and LLM orchestration (Lang Chain or Llama Index).
  • Contributions to open-source Dev Ops or MLOps projects.
  • Relevant certifications (e.g., AWS Certified Dev Ops Engineer, CKA).
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