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MLOps / AI Ops Engineer

Spear StaffingHouston, TX🇺🇸United StatesPosted 1 Sept 2026

Why This Role Stands Out

This on-site MLOps/AI Ops Engineer role offers a fantastic opportunity to deepen your expertise in deploying and managing cutting-edge AI systems on AWS SageMaker, working with a collaborative team. If you're a skilled Python developer with a strong background in MLOps principles, containerization, and CI/CD, you'll thrive in this impactful position. Apply now to advance your career in this dynamic field!

Quick Overview

Seniority
Mid Senior
Work mode
On Site
Location
Houston, TX, United States
Posted
Yesterday
DockerAWSMLOpsMachine LearningCloudFormationForecastingKubernetesPythonTerraform

Job Description

MLOps / AI Ops Engineer 
 (PRIORITY)  TOP Communication

As an MLOps / AI Ops Engineer, you will be responsible for deploying, monitoring, and supporting machine learning models in a production environment. You will work with Amazon SageMaker, AWS MLOps, and other relevant technologies to ensure the successful deployment and operation of machine learning systems. This role requires a strong background in machine learning operations and artificial intelligence, as well as proficiency in Python and containerization technologies like Docker and Kubernetes.

Responsibilities:

  • Deploy and manage machine learning models using AWS SageMaker
  • Implement production ML deployment, monitoring, and support with AWS MLOps
  • Develop automation scripts and tools using Python
  • Utilize Docker and Kubernetes for containerization and orchestration
  • Set up and maintain CI/CD pipelines for machine learning workflows
  • Monitor and manage the lifecycle of machine learning models
  • Collaborate with cross-functional teams to ensure effective communication and project delivery

Requirements:

  • Must-Haves:
    • AWS SageMaker – strong hands-on experience
    • AWS MLOps – production ML deployment, monitoring & support
    • Python – strong development/automation skills
    • Docker & Kubernetes (EKS/ECS)
    • CI/CD pipelines
    • ML model monitoring, observability & lifecycle management
    • Strong communication skills
  • AWS Stack: SageMaker, S3, EC2, EKS/ECS, Lambda, CloudWatch
  • Nice to Have: Terraform/CloudFormation, data drift detection, forecasting/time-series analytics, Oil & Gas/Upstream experience
  • Candidate Requirements:
    • A Players: Must already be in Houston, TX
    • B Players: Must be in Texas and able to relocate to Houston at their own expense before Day 1
    • Must be onsite Tuesday–Thursday at Greenway Plaza
    • 5+ years MLOps / AI Ops / Data Engineering / Software Engineering experience
    • Excellent communication is critical

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