Senior MLOps Architect: Build Scalable ML Platforms

D2R AI Labs

Detroit (MI)

On-site

USD 150,000 - 210,000

Full time

7 hours ago
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Job summary

D2R AI Labs seeks an experienced MLOps Architect to design scalable ML platforms and production-grade AI solutions. You will lead end-to-end ML lifecycle from development to deployment, ensuring reliability and observability across cloud-native environments.

Role requires deep expertise in MLOps, Docker/Kubernetes, and modern CI/CD pipelines, with collaboration across Data Scientists, ML Engineers, and DevOps teams. Detroit-based on-site position with focus on scalable, secure ML infrastructure.

Qualifications

  • 8+ years of experience in software/cloud/ML engineering, with strong MLOps experience.
  • Strong hands-on experience with MLOps architecture and ML lifecycle management.
  • Experience with Python and ML frameworks such as TensorFlow, PyTorch, or Scikit-learn.
  • Strong experience with Docker, Kubernetes, and CI/CD.
  • Experience with MLflow, Kubeflow, SageMaker, Azure ML, or Vertex AI.
  • Strong knowledge of AWS, Azure, or GCP.
  • Experience with Git, Jenkins, GitHub Actions, GitLab CI, or Azure DevOps.
  • Knowledge of model monitoring, model governance, data/model versioning, and automated deployment.
  • Strong understanding of APIs, microservices, cloud architecture, and infrastructure automation.
  • Experience with Terraform or similar Infrastructure-as-Code tools is preferred.

Responsibilities

  • Design and architect scalable MLOps platforms and ML/AI infrastructure.
  • Build and manage end-to-end machine learning model lifecycle from development through deployment and monitoring.
  • Develop CI/CD/CT pipelines for ML models and data workflows.
  • Implement model versioning, experiment tracking, model registry, and automated deployment processes.
  • Design ML solutions using AWS, Azure, or GCP cloud platforms.
  • Work with Docker and Kubernetes for containerized ML workloads.
  • Implement model monitoring, performance tracking, drift detection, and production observability.
  • Integrate data pipelines with ML training and inference workflows.
  • Establish security, governance, scalability, and reliability standards for ML platforms.
  • Collaborate with Data Scientists, ML Engineers, Data Engineers, DevOps, and Architecture teams.
  • Troubleshoot production ML systems and optimize infrastructure and deployment processes.

Skills

MLOps experience
Python
ML lifecycle management
Cloud architecture
APIs & microservices
Stakeholder communication
DevOps collaboration

Tools

Docker
Kubernetes
CI/CD pipelines
MLflow
Kubeflow
SageMaker
Azure ML
Vertex AI
Terraform
Git
Jenkins
GitHub Actions
GitLab CI
Azure DevOps

Job description

D2R AI Labs seeks an experienced MLOps Architect to design scalable ML platforms and production-grade AI solutions. You will lead end-to-end ML lifecycle from development to deployment, ensuring reliability and observability across cloud-native environments.

Role requires deep expertise in MLOps, Docker/Kubernetes, and modern CI/CD pipelines, with collaboration across Data Scientists, ML Engineers, and DevOps teams. Detroit-based on-site position with focus on scalable, secure ML infrastructure.

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