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Agent Engineer Jobs in Kansas (NOW HIRING)

GTM Ops The Opportunity Agent Systems Engineer is what we call this role. You may know it as GTM Engineer, Revenue Systems Engineer, Growth Engineer, or internal Forward Deployed Engineer. The ...

Agent safety is the primary focus of this role: you will help ensure that as our systems gain the ... Strong software engineering skills with the ability to write production-grade code (primarily ...

Agent safety is the primary focus of this role: you will help ensure that as our systems gain the ... Strong software engineering skills with the ability to write production-grade code (primarily ...

... Agent to join its award-winning legal department. The successful candidate will support the ... This patent professional will work closely with NetApp's engineering, technical, and business ...

Senior Applied AI Engineer

Overland Park, KS · Remote

$115K - $152K/yr

You will leverage the latest model architectures, agent harnesses, Agent Development Kits (ADK ... Own model selection, prompt engineering/harnessing, context retrieval (RAG pipelines), agent ...

$89K - $123K/yr

We are looking for a Senior Applied AI Engineer to help build and ship Tango's first AI-powered ... Agent Design & Delivery Design, build, and ship production AI agents on LangGraph, keeping the ...

$89K - $123K/yr

We are looking for a Senior Applied AI Engineer to help build and ship Tango's first AI-powered ... Agent Design & Delivery Design, build, and ship production AI agents on LangGraph, keeping the ...

Commissioning Agent We are seeking a dedicated Commissioning Agent to assist with commissioning ... About Actalent Actalent is a global leader in engineering and sciences services and talent ...

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Agent Engineer information

See Kansas salary details

$4

$15

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How much do agent engineer jobs pay per hour?

As of Sep 4, 2026, the average hourly pay for agent engineer in Kansas is $15.29, according to ZipRecruiter salary data. Most workers in this role earn between $12.88 and $17.16 per hour, depending on experience, location, and employer.

What is the difference between Agent Engineer vs Network Engineer?

AspectAgent EngineerNetwork Engineer
Required CredentialsBachelor's in Computer Science or related, certifications like CCNA, CompTIA Network+Bachelor's in Computer Science, Information Technology, or related, certifications like CCNA, CCNP
Work EnvironmentDeveloping, testing, and maintaining agent software, often in software development teamsDesigning, implementing, and managing network infrastructure, often in IT or telecom environments
Employer & Industry UsageTech companies, software firms, cloud service providersTelecom, IT services, large enterprises with complex networks

Agent Engineers focus on developing and maintaining software agents that facilitate automation and communication within systems, while Network Engineers design and manage network infrastructure. Both roles require technical certifications and often work in tech-driven environments, but their core responsibilities differ significantly.

What cities in Kansas are hiring for Agent Engineer jobs?

Cities in Kansas with the most Agent Engineer job openings:

Infographic showing various Agent Engineer job openings in Kansas as of August 2026, with employment types broken down into 91% Full Time, 6% Part Time, 1% Temporary, and 2% Contract. Highlights an 83% Physical, 1% Hybrid, and 16% Remote job distribution, with an average salary of $31,807 per year, or $15.3 per hour.

Lead Decision Intelligence Engineer (AI) - NBA

Humana Inc

Topeka, KS • On-site

$140 - $210/hr

Other

This job post has expired 1 day ago. Applications are no longer accepted.


Humana rating

8.0

Company rating: 8.0 out of 10

Based on 267 frontline employees who took The Breakroom Quiz

170th of 315 rated insurance


Job description

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The Lead Decision Intelligence Engineer (AI) owns the application of Decision Intelligence and agentic AI across the NBA platform. This role analyzes and formalizes the business decisions that drive member engagement, translating stakeholder objectives, constraints, policies, and available data into structured decision models that can be evaluated, optimized, and automated. Working closely with business, product, and engineering teams, you identify where decisions should remain rule-based, where predictive models should be applied, and where agentic systems can create measurable value.

You then design and build production‑grade decision intelligence capabilities that help teams create, understand, optimize, and govern member actions. Using LangGraph, LangChain, Azure OpenAI, Azure AI Foundry, Databricks, and Humana's AI Gateway, you build agentic workflows that reason through decision processes, generate recommendations, explain tradeoffs, assist with action authoring, and continuously improve decision outcomes. This is a hands‑on technical leadership role that combines decision science, AI engineering, and software architecture while leading a small team of engineers.

Key Responsibilities
  • Decision intelligence modeling — Analyze and formally model business decision processes, including objectives, constraints, policies, decision points, outcomes, dependencies, and feedback loops that govern member engagement.
  • Decision decomposition — Break complex business processes into decision graphs, decision services, decision hierarchies, and optimization opportunities that can be measured, automated, and improved.
  • Optimization strategy — Determine where rules, predictive models, reinforcement learning, optimization techniques, or agentic systems create the highest business value and operational impact.
  • Agentic workflow delivery — Design and implement production agent workflows using LangGraph and LangChain, including multi‑agent collaboration, tool usage, workflow memory, planning, reasoning, and human‑in‑the‑loop approval patterns.
  • Action Library intelligence — Build AI‑powered capabilities embedded directly into the Action Library that assist users in creating, refining, validating, governing, and optimizing member actions.
  • LLM and agent engineering — Own integration with Azure OpenAI and other enterprise models through Humana's AI Gateway, including prompt engineering, structured outputs, retrieval patterns, tool calling, function execution, and workflow orchestration.
  • Knowledge and retrieval systems — Design retrieval‑augmented architectures using vector search, semantic retrieval, knowledge grounding, and enterprise content sources to provide reliable decision context.
  • Reinforcement learning integration — Partner with data science teams to operationalize reinforcement learning and decision optimization models within NBA workflows, ensuring recommendations can be deployed and governed at scale.
  • Evaluation and experimentation — Build rigorous evaluation frameworks that measure recommendation quality, decision quality, agent effectiveness, user adoption, business outcomes, and operational performance.
  • AI governance and safety — Implement guardrails, observability, traceability, policy controls, human review mechanisms, and auditability requirements appropriate for a healthcare environment.
  • Team leadership — Lead and mentor AI engineers, establish engineering standards, conduct design reviews, and drive execution across the Decision Intelligence workstream.
  • Cross‑functional partnership — Work closely with product, business, decision science, data science, and engineering teams to convert complex decision processes into production AI capabilities.
Required Qualifications
  • Bachelor's degree in computer science or related field
  • 6+ years of software engineering, machine learning engineering, AI engineering, or decision intelligence experience, including at least 1–2 years in a technical leadership capacity.
  • Strong Python engineering experience building and operating production AI systems.
  • Hands‑on experience building agentic applications using LangGraph, LangChain, AutoGen, CrewAI, or similar orchestration frameworks.
  • Experience integrating Azure OpenAI, Azure AI Foundry, Vertex AI, Anthropic, OpenAI, or comparable enterprise AI platforms.
  • Strong understanding of Decision Intelligence concepts, including decision modeling, optimization, decision automation, objectives, constraints, and outcome measurement.
  • Experience implementing LLM application patterns including tool calling, structured outputs, retrieval‑augmented generation (RAG), memory management, and workflow orchestration.
  • Experience building evaluation frameworks for AI systems, including automated evaluation, human review, performance measurement, and experimentation.
  • Ability to map business processes into formal decision frameworks and communicate those models to both technical and non‑technical stakeholders.
  • Demonstrated ability to lead a small engineering team while remaining a hands‑on contributor.
  • Strong communication skills with the ability to explain complex AI and decision architectures to senior leadership.
Preferred Qualifications
  • Experience with Decision Intelligence methodologies, decision modeling notation, decision requirements analysis, influence diagrams, decision graphs, or business decision management frameworks.
  • Experience operationalizing reinforcement learning, contextual bandits, recommendation systems, or next‑best‑action optimization platforms.
  • Experience with Databricks, MLflow, Feature Store, Mosaic AI, or enterprise machine learning platforms.
  • Experience with Azure AI Search, vector databases, semantic retrieval systems, and enterprise knowledge architectures.
  • Experience with observability platforms such as LangSmith, OpenTelemetry, PromptFlow, Azure Monitor, or equivalent AI monitoring solutions.
  • Experience integrating AI capabilities into enterprise software platforms and workflow‑driven applications.
  • Experience with Adobe Experience Platform (AEP), Salesforce, CRM platforms, healthcare engagement platforms, or marketing technology ecosystems.
  • Experience with background in healthcare, insurance, or another highly regulated industry with auditability, explainability, and compliance requirements.
Key Responsibilities Microservices & Backend Engineering
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About Humana

Sourced by ZipRecruiter

Humana Inc., headquartered in Louisville, KY., is a leading health care company that offers a wide range of insurance products and health and wellness services that incorporate an integrated approach to lifelong well-being. By leveraging the strengths of its core businesses, Humana believes it can better explore opportunities for existing and emerging adjacencies in health care that can further enhance wellness opportunities for the millions of people across the nation with whom the company has relationships.

Industry

Health care and social assistance

Company size

10,000+ Employees

Headquarters location

Louisville, KY, US

Year founded

1961

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