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MLOps Engineer

Ref: JO-2608-362942

  • Environment: In-office
  • Contract Type: Contract
  • Starts: 2026-12-01
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We are working on a brand-new project, which is an Innovation Hub/Ai Lab.

Job Purpose

Designs and develops a ML platform to empower the Data Science and AI team to scale ML experimentation and speed up path to production.

Key Responsibilities:

  • Design and automate robust ML pipelines for continuous integration, continuous delivery, and continuous training (CI/CD/CT) of models.
  • Configure model serving architectures to support both ultra-low latency real-time APIs (e.g., FastAPI, gRPC) and large-scale batch inference.
  • Implement model monitoring and logging systems to track model metrics, runtime latencies, data drift, and concept decay in production.
  • Manage model registries and metadata to ensure reproducible versioning, tracking, and auditable lineage of ML artifacts (using MLflow, Kubeflow, etc.).
  • Orchestrate and scale containerized applications using Docker and production-grade Kubernetes or managed container services (EKS, AKS).
  • Collaborate with security and data teams to enforce strict data governance, pipeline encryption, network isolation, and secure IAM policies.

Qualifications/Experience:

  • 3-7) years of experience building and operating high-availability ML pipelines, automation scripts, and foundational platform infrastructure layers.
  • Strong programming skills in Python, Go, or Java alongside systems scripting and deep hands-on familiarity with Linux environments.
  • Deep familiarity with MLOps tools such as MLflow, Kubeflow, Argo Workflows, Feast, or managed platform equivalents (SageMaker, Azure ML).
  • Understanding of cloud security architectures including VPC isolation, private endpoints, encryption at rest/in transit, and role-based access control.
  • Understanding of containerization and orchestration using Docker and Kubernetes, alongside Infrastructure-as-Code (Terraform, CloudFormation).

Salt is acting as an Employment Business in relation to this vacancy.

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MLOps Engineer

  • United Arab Emirates, Abu Dhabi
  • Data, AI and Machine Learning, Technology
  • In-office
  • Contract

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MLOps Engineer

  • United Arab Emirates, Abu Dhabi
  • Data, AI and Machine Learning, Technology
  • In-office
  • Contract

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