MLOps Azure DevOps Engineer

Apex Systems

Estado de México

Presencial

MXN 80.000 - 120.000

Jornada completa

14 días+
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Descripción de la vacante

A leading technology firm is seeking a skilled DevOps Engineer specialized in Cloud and ML Engineering. The role involves architecting and deploying ML models, managing CI/CD pipelines, and providing technical mentorship. Ideal candidates should have strong expertise in Microsoft Azure, Docker, and Kubernetes, along with experience in operationalizing ML models. This position offers a dynamic work environment and the opportunity to lead technical initiatives.

Formación

  • 5+ years of experience in DevOps, Cloud Engineering, or ML Engineering.
  • 3+ years of hands-on experience in MLOps.
  • Experience with operationalizing ML models in production.

Responsabilidades

  • Architect and implement scalable end-to-end ML pipelines.
  • Design and maintain CI/CD pipelines for ML workflows.
  • Implement automated model versioning and rollback strategies.
  • Provision and manage infrastructure using Infrastructure as Code.
  • Deploy containerized ML services using Docker and Kubernetes.
  • Implement monitoring frameworks for model performance.
  • Optimize inference performance and cost efficiency.
  • Provide technical leadership to junior engineers.

Conocimientos

DevOps experience
Cloud Engineering experience
MLOps hands-on experience
Strong experience with Microsoft Azure
Experience with AWS or GCP
Advanced knowledge of Docker
Strong experience with Kubernetes
Advanced proficiency in Python
Experience with Bash and/or PowerShell
Experience designing and consuming REST APIs
Experience with TensorFlow, PyTorch, or Scikit-learn
Familiarity with ML lifecycle tools
Experience with orchestration tools

Herramientas

Docker
Kubernetes
Terraform
Azure DevOps
MLflow
Apache Airflow

Descripción del empleo

Qualifications
  • 5+ years of experience in DevOps, Cloud Engineering, or ML Engineering
  • 3+ years of hands‑on experience in MLOps or operationalizing ML models in production environments
Key Responsibilities
  • Architect and implement scalable end-to-end ML pipelines (training, validation, deployment, monitoring)
  • Design and maintain CI/CD pipelines for ML workflows using Azure DevOps
  • Implement automated model versioning, artifact management, and rollback strategies
  • Provision and manage infrastructure using Infrastructure as Code (Terraform, ARM)
  • Deploy containerized ML services using Docker and Kubernetes
  • Implement monitoring frameworks for model performance, drift detection, and data quality
  • Optimize inference performance, scalability, and cost efficiency
  • Ensure compliance, governance, and security best practices in cloud ML environments
  • Provide technical leadership and mentorship to junior engineers
  • Collaborate closely with Data Science and Engineering teams to define production standards
Required Skills
  • Strong experience with Microsoft Azure (required)
  • Experience with AWS or GCP (plus)
  • Advanced knowledge of Docker
  • Strong hands‑on experience with Kubernetes (production clusters)
  • Advanced proficiency in Python
  • Experience with Bash and/or PowerShell
  • Experience designing and consuming REST APIs
  • Experience with TensorFlow, PyTorch, or Scikit-learn
  • Familiarity with ML lifecycle tools such as MLflow, Kubeflow, DVC, or TFX
  • Experience with orchestration tools such as Apache Airflow or Prefect
  • Implementation of model drift detection and performance monitoring frameworks
Preferred Certifications
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