Overseas Contractor
Job Req Id:
1419107
MLOps Engineer – Vertex AI Specialist
Roles & Responsibilities
- Build and maintain end-to-end MLOps pipelines using Vertex AI Pipelines, Vertex AI Experiments, and Vertex AI Model Monitoring.
- Implement Kubeflow Pipelines for scalable and reproducible ML workflows.
- Utilize Managed Notebooks and Vertex AI Datasets for data preprocessing and model development.
- Optimize training and inference using GPU accelerators and CUDA.
- Set up Cloud Build for automated CI/CD of ML models and manage artifacts via Artifact Registry.
- Monitor deployed models in real time using Vertex AI Monitoring and implement drift detection strategies.
- Collaborate with data scientists and DevOps teams to streamline deployment and lifecycle management.
- Ensure operational excellence through data versioning, model version control, and infrastructure automation.
Experience & Qualifications
- Bachelor’s or Master’s degree in Computer Science, Data Engineering, or related field.
- 5–10 years of experience in software/data engineering, with 3+ years in MLOps or ML engineering on GCP using Vertex AI.
- Hands-on experience deploying ML models in production environments.
- Strong understanding of ML lifecycle, DevOps, and cloud-native technologies.
- Excellent scripting and automation skills.
Primary Skills (Mandatory)
- MLOps Tools: MLflow, DVC, Kubeflow, TFX
- CI/CD & DevOps: Jenkins, GitHub Actions, Docker, Kubernetes, Azure DevOps, Cloud Build
- Programming: Python, ML pipeline automation, Bash, YAML
- Cloud Platforms: Azure ML, AWS SageMaker, GCP Vertex AI
- Monitoring & Logging: Prometheus, Grafana, ELK/EFK stack
- Model Deployment: FastAPI, Flask, REST APIs, containerized delivery
- Data Engineering: Airflow, Spark, Delta Lake, feature stores
- Security & Compliance: IAM, Key Vault, encryption, GDPR/SOC2
Secondary Skills (Good to Have)
- AutoML Tools: Azure AutoML, H2O.ai, Google AutoML
- Edge AI: Deployment on IoT/edge devices
- Visualization: Power BI, Streamlit, Dash
- Domain Exposure: Manufacturing, BFSI, Healthcare, Retail
- Responsible AI: Model explainability, fairness, bias detection
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