AI/ML Engineer (Active Secret) — Applied AI & Automation

Posted Yesterday
Hiring Remotely in USA
Remote
Entry level
Artificial Intelligence • Cloud • Machine Learning
The Role
Build and deploy AI applications, agents, intelligent workflows, document-processing solutions, predictive analytics, and automation. The role spans AI use-case assessment, solution design, prototyping, evaluation, testing, production deployment, monitoring, governance, and responsible-AI controls. The engineer will integrate AI with enterprise systems, APIs, workflows, and data platforms while partnering with engineering, cybersecurity, governance, and mission teams in a federal environment.
Summary Generated by Built In

AI/ML Engineer — Applied AI & Intelligent Automation

Remote
Active Secret Clearance Required

Build AI That Moves Into Production

Rackner is seeking an AI/ML Engineer to help shape how artificial intelligence is evaluated, built, governed, and deployed across a federal data modernization environment.

This role goes beyond isolated prototypes or model development. You will help determine where AI can create meaningful operational value, whether AI is the right solution, and how promising use cases move from concept into production.

You will have the opportunity to build AI applications, agents, intelligent workflows, and automation while also influencing how emerging AI and LLM technologies are evaluated, governed, monitored, and adopted. Your work may span use-case assessment, solution design, prototyping, testing, deployment, responsible-AI controls, and post-production monitoring.

Working alongside engineering, data, cybersecurity, governance, and mission teams, you will gain visibility across the full AI delivery lifecycle and help shape both the technology and the decisions behind it.

For an engineer who wants to expand beyond a narrow model-development role, this position offers exposure across:

Applied AI engineering → AI/LLM evaluation → intelligent automation → responsible AI → enterprise adoption

You will help turn emerging AI capabilities into practical tools that support real operational needs—not innovation for innovation’s sake.

Then I’d go directly into:

What You’ll Own

  • Turn operational challenges into practical AI use cases, technical requirements, and solution designs
  • Build and deploy AI applications, agents, intelligent workflows, and process automations
  • Take solutions from intake and prototype through testing, production deployment, and monitoring
  • Apply Python to AI/ML prototypes, integrations, evaluations, and automation
  • Connect AI capabilities with enterprise applications, APIs, workflows, and data platforms
  • Create intelligent document workflows for classification, extraction, summarization, routing, and related use cases
  • Evaluate AI, generative AI, and LLM platforms for quality, security, reliability, scalability, risk, and organizational fit
  • Design pilots, evaluation criteria, test plans, success measures, and adoption recommendations
  • Shape responsible-AI controls covering model evaluation, performance monitoring, human oversight, risk, and incident response
  • Apply tools such as Power Automate, Power Apps, Copilot Studio, or comparable intelligent-automation platforms
  • Develop AI-driven analytics capabilities including predictive modeling, forecasting, and natural-language interaction with enterprise data
  • Partner with stakeholders and technical teams to move useful AI capabilities from concept into sustainable operational use

What You'll Bring

  • A track record of building, integrating, evaluating, or deploying AI/ML capabilities in real organizational environments
  • Strong Python skills
  • Hands-on work with generative AI, LLM applications, machine learning, intelligent automation, or related applied-AI technologies
  • Ability to integrate solutions with APIs, enterprise systems, workflows, or data sources
  • Understanding of the AI delivery lifecycle from requirements and prototyping through testing, deployment, monitoring, and iteration
  • Working knowledge of responsible-AI, governance, model evaluation, or AI risk-management practices
  • Technical judgment to assess feasibility, value, implementation complexity, and risk
  • Ability to translate operational needs into practical technical solutions
  • Clear communication across both technical and nontechnical stakeholders
  • Active Secret clearance

Valuable Additional Background

You do not need every item below to be successful in the role.

Background in one or more of these areas would be valuable:

  • Generative AI and enterprise LLM applications
  • AI agents or agentic workflows
  • Power Automate, Power Apps, Copilot Studio, or similar automation platforms
  • Azure AI, Microsoft Fabric, or related Microsoft technologies
  • Intelligent document processing
  • Predictive analytics, forecasting, or natural-language analytics
  • AI governance, human-in-the-loop controls, model monitoring, or evaluation frameworks
  • Organizational AI pilots or technology-selection efforts
  • Responsible AI within DoD or other regulated environments
  • Federal, defense, or education technology environments

Why Rackner

At Rackner, you will work on technology intended for real mission use—not innovation theater.

This role offers the opportunity to help determine where AI creates value, how solutions should be built, and what responsible production adoption looks like within a complex federal environment.

You will collaborate with teams working across AI/ML, cloud, data, DevSecOps, cybersecurity, and modern software engineering while gaining exposure to both technical delivery and the decisions that shape how emerging technology is adopted.

Rackner is a software consultancy building mission-critical systems for the U.S. government. Our teams support federal agencies and national-security missions through modern cloud, software, data, and AI capabilities.

Benefits & Perks

  • Company-supported certifications across AI/ML, cloud, Kubernetes, DevSecOps, security, and related technical areas
  • Clear advancement tracks and future leadership opportunities
  • 401(k) with 100% match up to 6%
  • Medical, dental, vision, life, and disability coverage
  • Generous PTO and paid holidays
  • Home-office equipment and remote-work support
  • Fitness and wellness reimbursement
  • Weekly pay
  • Team events and professional-development opportunities

Equal Opportunity

Rackner is an equal opportunity employer and considers all qualified applicants without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, veteran status, or other protected characteristics.

Skills Required

  • Track record of building, integrating, evaluating, or deploying AI/ML capabilities in real organizational environments
  • Strong Python skills
  • Hands-on experience with generative AI, LLM applications, machine learning, intelligent automation, or related applied-AI technologies
  • Ability to integrate solutions with APIs, enterprise systems, workflows, or data sources
  • Understanding of the AI delivery lifecycle from requirements and prototyping through testing, deployment, monitoring, and iteration
  • Working knowledge of responsible AI, governance, model evaluation, or AI risk-management practices
  • Technical judgment to assess feasibility, value, implementation complexity, and risk
  • Ability to translate operational needs into practical technical solutions
  • Clear communication with technical and nontechnical stakeholders
  • Active Secret clearance
  • Experience with generative AI and enterprise LLM applications
  • Experience with AI agents or agentic workflows
  • Experience with Power Automate, Power Apps, Copilot Studio, or similar automation platforms
  • Experience with Azure AI, Microsoft Fabric, or related Microsoft technologies
  • Experience with intelligent document processing
  • Experience with predictive analytics, forecasting, or natural-language analytics
  • Experience with AI governance, human-in-the-loop controls, model monitoring, or evaluation frameworks
  • Experience leading organizational AI pilots or technology-selection efforts
  • Experience applying responsible AI within DoD or other regulated environments
  • Experience in federal, defense, or education technology environments
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The Company
HQ: Silver Spring, MD
11 Employees
Year Founded: 2015

What We Do

Rackner builds cutting-edge solutions that apply DevSecOps and the power of AI in the datacenter, public and private clouds, and edge, leveraging the future of compute capability and technologies like Kubernetes (k8s) and WebAssembly (WASM). We're a member of the Cloud Native Computing Foundation and a Kubernetes Certified Service Provider - as well as a partner to the major public cloud companies. Our customers include hypergrowth startups and federal agencies, both Civilian and Defense. Core Competencies - DevSecOps - Edge Computing - AI/ML - Cloud-Native and Hybrid-Cloud development - Web and Mobile Applications Development (Microservices)

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