AI DevOps Engineer

Iconma LLC

  • Dallas, TX
  • 14 days ago

    Highlights

    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. Requirements: 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., TensorFlow, PyTorch) is highly desirable DevOps Tools: Experience with CI/CD tools (Jenkins, GitLab 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.

    Numbers & Facts

    LocationDallas, TX

    Description

    Our client, a IT Services and Consulting company, is looking for a AI DevOps Engineer for their Plano, TX location.

    Responsibilities:

    • An AI DevOps 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
    • 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

    Requirements:

    • 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., TensorFlow, PyTorch) is highly desirable DevOps Tools:
    • Experience with CI/CD tools (Jenkins, GitLab 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
    • 10.00 Years of Experience

    Why Should You Apply?

    • Health Benefits
    • Referral Program
    • Excellent growth and advancement opportunities

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