AI DevOps Engineer

ReqRoute,Inc

Plano (TX)

On-site

USD 140,000 - 180,000

Full time

14 days+
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Job summary

ReqRoute,Inc in Plano, TX is seeking an AI DevOps Engineer to integrate AI/ML models into production, manage cloud infrastructure, and automate deployment pipelines. The role focuses on reliability, scalability, and security while collaborating with data scientists, software engineers, and business stakeholders.

We value 9+ years of experience, strong Python and cloud proficiency, and hands-on expertise with CI/CD, containers, and infrastructure-as-code to deliver robust AI-powered products.

Qualifications

  • Proficiency in Python; Bash or Java familiarity is beneficial.
  • Experience with AWS, Azure, or Google Cloud for AI deployment.
  • Understanding of ML models, data pipelines, and AI frameworks like TensorFlow or PyTorch.
  • Experience with CI/CD tools (Jenkins, GitLab CI), containers (Docker, Kubernetes), and IaC (Terraform, Ansible).
  • Strong problem-solving skills and ability to communicate with both technical and non-technical stakeholders.

Responsibilities

  • AI/ML Deployment and Operations: Deploy, monitor, and maintain AI models in production.
  • Infrastructure Management: Manage cloud and on-prem resources, including GPU servers.
  • CI/CD Pipeline Development: Build and manage CI/CD pipelines for AI apps.
  • Automation and Scripting: Automate tasks and deployments using Python and scripts.
  • Collaboration: Work with engineers, data scientists, and product managers to implement AI solutions.
  • Monitoring and Security: Implement monitoring and security best practices for AI systems.
  • Documentation and Training: Create technical docs and provide end-user training.

Skills

Python
Bash/Java
Cloud platforms
AI/ML knowledge
CI/CD
Docker
Kubernetes
Terraform/Ansible
Problem-solving
Communication

Tools

Jenkins
GitLab CI
Docker
Kubernetes
Terraform
Ansible

Job description

Job title: AI DevOps Engineer
Role is onsite - Plano, TX
Years of experience required: 9+

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

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., 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
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