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Information Technology & Services

DevOps / Cloud Engineer

CanadaOnsiteContractPosted 1 month ago

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We are seeking a
Senior DevOps / MLOps / Data Engineer
with strong experience in Azure to lead platform engineering, deployment automation, and AI/ML model deployment. This role focuses on building scalable, secure, and cost-efficient cloud solutions while enabling end-to-end ML lifecycle management and data engineering capabilities.
Key Responsibilities
DevOps, Deployment & MLOps (Primary Focus)

  • Design and implement CI/CD pipelines using Azure DevOps, Git, and YAML
  • Manage end-to-end deployments across Dev, QA, and Production environments
  • Lead deployment of AI/ML models into production using automated pipelines
  • Implement model lifecycle management (training, validation, deployment, monitoring)
  • Deploy and manage batch and real-time inference models
  • Automate infrastructure provisioning using ARM, Bicep, or Terraform
  • Manage Azure resources via Portal, CLI, and scripting
  • Oversee Databricks cluster management, scaling, and performance tuning
  • Implement release strategies, versioning, rollback, and environment configuration
  • Build scalable API-based model inference endpoints
  • Integrate Azure AI services (e.g., Azure AI Search, Azure AI Foundry)
  • Monitor system reliability, model performance, and drift

Data Engineering

  • Design and develop data pipelines using Azure Data Factory, Databricks, and ADLS
  • Build and optimize data models in Azure SQL, SQL Server, and Oracle
  • Implement ETL/ELT processes for large-scale data processing
  • Ensure data quality, governance, and performance optimization
  • Support medallion architecture (Bronze, Silver, Gold layers)

Security & Compliance

  • Implement secure cloud architecture using RBAC, Managed Identities, and Key Vault
  • Secure data pipelines and ML endpoints (encryption, private endpoints, network controls)
  • Ensure compliance with data protection and governance standards
  • Manage secrets, credentials, and access policies

Cost Optimization

  • Optimize cloud costs across Databricks, storage, and compute resources
  • Implement cluster right-sizing and auto-scaling strategies
  • Monitor usage and enforce cost governance
  • Recommend cost-performance improvements

API & Integration

  • Design and build scalable REST APIs for data access and model inference
  • Develop API-based integrations with internal and external systems
  • Enable real-time and batch data integrations
  • Implement API security (authentication, throttling, versioning)
  • Support event-driven architectures and messaging systems

Required Qualifications

  • 10+ years of IT experience, including 5+ years in DevOps / MLOps / Data Engineering
  • Strong expertise in:
  • Azure ecosystem (ADF, Databricks, ADLS, Azure SQL)
  • CI/CD pipelines, Git, and YAML
  • Infrastructure as Code (ARM, Bicep, Terraform)
  • SQL and relational databases (Azure SQL, Oracle)
  • REST API development and integration
  • Proven experience in:
  • Deploying AI/ML models into production
  • End-to-end deployment pipelines and release management
  • Cluster management and optimization

Nice to Have

  • Azure AI Search and Azure AI Foundry
  • Event-driven architecture (Event Grid, Service Bus)
  • Streaming platforms (Kafka, Event Hubs)
  • Containerization (Docker, Kubernetes, AKS)
  • Experience with LLMs / Generative AI pipelines
  • Data governance and medallion architecture

Soft Skills

  • Strong problem-solving and troubleshooting skills
  • Ability to collaborate across DevOps, Data, and ML teams
  • Excellent communication and documentation
  • Leadership and mentoring capabilities

Must-Have Requirements

  • 10+ years designing and implementing CI/CD pipelines (Azure DevOps, Git, YAML)
  • 10+ years deploying AI/ML models using automated pipelines
  • 10+ years implementing ML lifecycle management
  • 10+ years building data pipelines using ADF, Databricks, and ADLS
Ready to apply?
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