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MLOps EngineerA 1 L • Johannesburg, Gauteng, South Africa
MLOps Engineer

MLOps Engineer

A 1 L • Johannesburg, Gauteng, South Africa
1 day ago
Job description

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Key Responsibilities

  • Deploy machine learning models into production environments using scalable and automated deployment practices.
  • Build and maintain model serving infrastructure for real-time and batch inference use cases.
  • Implement monitoring frameworks to track model performance drift latency data quality and service reliability.
  • Automate model retraining pipelines in collaboration with ML Engineers and Data Engineers.
  • Manage model versioning deployment lifecycle and rollback strategies.
  • Operationalise CI/CD pipelines for machine learning workflows in collaboration with Platform Engineering teams.
  • Ensure model deployments comply with security governance privacy and enterprise architecture standards.
  • Support incident management root cause analysis and resolution of model performance issues in production.
  • Optimise model inference performance scalability and cost efficiency across cloud environments.
  • Collaborate with ML Engineers Data Scientists Big Data Engineers and Platform Engineers to ensure smooth transition from development to production.
  • Maintain documentation for model deployment processes monitoring dashboards and operational procedures.

Qualifications & Experience

  • Bachelors degree in Computer Science Data Science Information Technology Engineering or a related field.
  • 58 years experience in Machine Learning Engineering DevOps or MLOps roles.
  • Strong experience deploying and maintaining machine learning models in production environments.
  • Hands-on experience with model serving frameworks and MLOps tools (e.g. MLflow Kubeflow Sagemaker Azure ML or similar).
  • Experience with containerisation and orchestration technologies such as Docker and Kubernetes.
  • Strong programming skills in Python and experience with REST APIs and microservices.
  • Experience with cloud platforms such as Azure AWS or Google Cloud Platform.
  • Knowledge of model monitoring drift detection and performance evaluation techniques.
  • Experience with CI/CD pipelines for machine learning workloads is highly desirable.

Key Competencies

  • MLOps and model lifecycle management
  • Model deployment and serving
  • Monitoring and observability
  • CI/CD for ML systems
  • Cloud computing and containerisation
  • Python development
  • API and microservices integration
  • Model governance and version control
  • Troubleshooting and incident resolution
  • Collaboration in Agile delivery environments



Required Experience:

IC


Employment Type : Contract
Experience: years
Vacancy: 1

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MLOps Engineer • Johannesburg, Gauteng, South Africa

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