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Mlops engineer

Leicester
Virgule International Limited
Engineer
Posted: 16 August
Offer description

We are seeking a high-caliber MLOps Engineer to design, automate, and scale end-to-end ML model lifecycles in production. You will own the deployment, monitoring, and governance of models, bridging data science and engineering to deliver secure, high-performance AI solutions at enterprise scale.

Core Responsibilities

Architect & manage ML model deployment pipelines using MLflow, Kubeflow, or similar frameworks.

Build CI/CD pipelines tailored for ML workloads (GitHub Actions, Jenkins, GitLab CI).

Containerize and orchestrate ML services using Docker & Kubernetes (EKS, AKS, GKE).

Integrate models into cloud ML platforms (AWS SageMaker, Azure ML, GCP Vertex AI).

Implement model monitoring for accuracy, drift detection, and retraining automation.

Establish feature stores and integrate with data pipelines (Feast, Tecton, Hopsworks).

Ensure compliance with AI governance, security, and responsible AI practices.

Optimize inference performance and reduce serving latency for large-scale deployments.

Collaborate with cross-functional teams to translate ML research into production-grade APIs.

5-8+ years in MLOps, ML engineering, or DevOps roles.

Deep knowledge of ML lifecycle management tools (MLflow, Kubeflow, SageMaker Pipelines).

Strong containerization skills (Docker, Kubernetes) with production deployments.

Cloud-native ML deployment experience (SageMaker, Azure ML, Vertex AI).

Proficiency in Python, Bash, and scripting for automation.

Familiarity with IaC tools (Terraform, CloudFormation, ARM).

Strong grasp of CI/CD for ML and data versioning (DVC, Delta Lake).

Understanding of monitoring & observability tools (Prometheus, Grafana, ELK, OpenTelemetry).

Preferred Qualifications

Cloud certifications (AWS, Azure, GCP).

Experience with model explainability tools (SHAP, LIME).

Exposure to deep learning deployment (TensorFlow Serving, TorchServe, ONNX).

Knowledge of API frameworks (FastAPI, Flask) for ML inference services.

Experience with real-time streaming integrations (Kafka, Kinesis, Pub/Sub)

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