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Senior AI Platform Engineer

Strategic Staffing SolutionsDetroit, MI🇺🇸United StatesPosted 22 Aug 2026

Why This Role Stands Out

You will play a pivotal role in transforming cutting-edge AI and machine learning solutions into secure, scalable production applications within a reputable company. This hybrid role offers excellent opportunities for growth and impact as you collaborate with diverse teams to build robust data pipelines and deploy solutions on Microsoft Azure. If you thrive on innovation and enjoy building impactful technology, this position is an exciting next step for your career.

Quick Overview

Seniority
Mid Senior
Work mode
On Site
Location
Detroit, MI, United States
Posted
4 days ago
DockerSQLShellETLMLOpsMachine LearningAzureGenerative AIGitHub ActionsPythonRESTVault

Job Description

STRATEGIC STAFFING SOLUTIONS (S3) HAS AN OPENING!

Senior AI Platform Engineer
Detroit, MI (Hybrid/Onsite Tues-Thurs)
W2 contract role
12 Months then eligible for Contract renewal

Role Overview

We are seeking a Senior AI Platform Engineer to join our Advanced Analytics team and help transform analytical, machine learning, and Generative AI solutions into secure, scalable, production-ready applications.

Key Responsibilities


  • Partner with Data Scientists, Analytics professionals, and business stakeholders to productionize AI, ML, and Generative AI solutions.
  • Translate analytical and AI prototypes into scalable, maintainable software applications.
  • Develop production-quality Python applications, APIs, services, and integration components.
  • Design integrations between AI solutions and enterprise applications, data sources, APIs, and downstream systems.
  • Establish reusable engineering patterns for AI and analytics solutions.
  • Build and maintain data ingestion and integration pipelines supporting analytics and AI applications.
  • Develop and maintain ETL/ELT processes to acquire, transform, validate, and prepare data for analytical and AI use cases.
  • Integrate data from APIs, databases, files, enterprise applications, and other source systems.
  • Design reliable, maintainable data workflows appropriate for application and analytical requirements.
  • Design, deploy, and support AI and analytics applications within Microsoft Azure.
  • Work with Azure Functions, Azure App Service, Azure Container Apps, Azure Storage, Azure Key Vault, Azure AI services, Azure AI Foundry, Azure AI Search, Azure Monitor, and related Azure resources.
  • Understand Azure identity, authentication, authorization, networking, security, and resource-management concepts.
  • Work comfortably in Linux-based development and runtime environments.
  • Demonstrate practical Linux system administration knowledge, including processes, services, permissions, networking, package management, shell scripting, logs, and system troubleshooting.
  • Troubleshoot application and environment issues across local Linux and cloud-hosted environments.
  • Design and implement CI/CD pipelines using GitHub Actions to automate testing, building, and deployment.
  • Automate movement of applications from development through test and production environments.
  • Apply MLOps practices across the lifecycle of machine learning and AI applications from development through production.

Minimum Qualifications


  • Bachelor s degree in Computer Science, Engineering, Information Systems, or a related technical field, or equivalent practical experience.
  • 5+ years of experience in software, data, AI/ML, cloud, or platform engineering.
  • Strong Python and SQL skills, with experience building production-grade applications and data solutions.
  • Hands-on experience designing and building data ingestion, ETL/ELT pipelines, and scalable data engineering solutions to support analytics, AI/ML, and enterprise applications.
  • Hands-on experience with DevOps and MLOps, including CI/CD, GitHub Actions, deployment automation, monitoring, and operational support.
  • Experience developing and integrating REST APIs and enterprise applications.
  • Hands-on experience deploying applications and services on Microsoft Azure.
  • Experience with Docker, Podman, or similar container technologies.
  • Strong Linux administration, troubleshooting, and command-line experience.

*Beware of scams. S3 never asks for money during its onboarding process

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