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AI DevOps Engineer

Job in Plano, Collin County, Texas, 75086, USA
Listing for: TechDigital Group
Full Time position
Listed on 2026-09-03
Job specializations:
  • IT/Tech
    Cloud Computing: Infrastructure & Operations, AI Engineer (Applied/Software), Machine Learning/ ML Engineer, SRE/Site Reliability
Salary/Wage Range or Industry Benchmark: 120000 - 160000 USD Yearly USD 120000.00 160000.00 YEAR
Job Description & How to Apply Below

An AI Dev Ops Engineer is responsible for integrating artificial intelligence and machine learning models into operational environments, managing cloud infrastructure, and automating deployment pipelines. This role ensures AI solutions are reliable, scalable, and secure, while collaborating with data scientists, software engineers, and business stakeholders to deliver AI-powered products effectively

Key Responsibilities
  • AI/ML Deployment and Operations:
    Deploy, monitor, and maintain AI and ML models in production environments, ensuring performance and reliability
  • Infrastructure Management:
    Provision, configure, and maintain cloud and on-premises infrastructure, including GPU servers and high-performance computing resources
  • CI/CD Pipeline Development:
    Build and manage continuous integration and continuous deployment pipelines for AI applications
  • Automation and Scripting:
    Automate repetitive tasks, infrastructure provisioning, and model deployment using scripting languages like Python
  • Collaboration:

    Work closely with cross-functional teams, including engineers, data scientists, and product managers, to design and implement AI solutions
  • Monitoring and Security:
    Implement monitoring, logging, and security best practices to ensure AI systems operate safely and efficiently
  • Documentation and Training:
    Create technical documentation and provide training to end-users or team members on AI system usage and maintenance
Required

Skills and Qualifications
  • Programming:
    Proficiency in Python is essential; familiarity with other languages like Bash or Java is beneficial
  • Cloud Platforms:
    Experience with cloud services such as AWS, Azure, or Google Cloud for AI deployment
  • AI/ML Knowledge:
    Understanding of machine learning models, data pipelines, and AI frameworks (e.g., Tensor Flow, PyTorch) is highly desirable
  • Dev Ops Tools:
    Experience with CI/CD tools (Jenkins, Git Lab CI), containerization (Docker, Kubernetes), and infrastructure-as-code (Terraform, Ansible) is important
  • Problem-Solving:
    Ability to troubleshoot complex system issues and optimize AI workflows
  • Communication:
    Strong collaboration and communication skills to work with technical and non-technical stakeholders
Years of Experience

10.00 Years of Experience

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