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Ai Frontend Developer Jobs in Kansas (NOW HIRING)

Frontend: Next.js, React * Backend / Platform: Supabase (PostgreSQL, Auth, Edge Functions, Storage ... Hands-on experience with AI-powered developer tools and workflows (e.g., Cursor, Claude, Codex, or ...

Architect and build front-end features for our multi-tenant SaaS platform using React.js and ... You embrace AI-assisted development tools to ship faster without sacrificing quality. * Integration ...

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Deep knowledge of front-end technologies including HTML, CSS, and JavaScript, back-end development ...

Web Development Tutor

Wichita, KS · Remote

$18 - $40/hr

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Deep knowledge of front-end technologies including HTML, CSS, and JavaScript, back-end development ...

Sr Software Engineer - Web Development

Olathe, KS · On-site

$115K - $152K/yr

... in both front-end and back-end web development. Responsibilities : • Serves in a leadership ... DevOps and automated software delivery principles such as continuous integration/delivery (CI/CD ...

Web Developer

Wichita, KS · On-site

$100K - $120K/yr

Responsible for developing, coding, testing and maintaining new & existing front-end and back-end ... Experience with AI tools and technologies. * Experience with JIRA or other ticketing systems or ...

Web Developer

Wichita, KS

$100K - $120K/yr

Responsible for developing, coding, testing and maintaining new & existing front-end and back-end ... Experience with AI tools and technologies. * Experience with JIRA or other ticketing systems or ...

Manager User Experience

Leawood, KS · On-site +1

$113K/yr

Proficiency in Figma; experience with AI-powered design and ideation tools (Claude, generative tools, or similar) strongly preferred. * Experience working closely with front-end developers. * Strong ...

Sr. Software Engineer - .NET

Overland Park, KS · On-site

$121K - $159K/yr

Angular or modern frontend frameworks • Strong experience with: RESTful API design and ... AI-assisted development tools (e.g., code generation, automation, or developer copilots) to improve ...

Ability to operationalize AI/ML models and build workflows for enterprise clients. * Frontend ... Experience in DevOps, CI/CD pipelines, and secure release management. * Background in security ...

Develop and maintain both front-end and back-end components, ensuring seamless integration and ... Enthusiastic about photo sharing and/or AI and/or social media

Develop and maintain both front-end and back-end components, ensuring seamless integration and ... Enthusiastic about photo sharing and/or AI and/or social media

Develop and maintain both front-end and back-end components, ensuring seamless integration and ... Enthusiastic about photo sharing and/or AI and/or social media

Showing results 21-40

Ai Frontend Developer information

What is the difference between Ai Frontend Developer vs Machine Learning Engineer?

AspectAi Frontend DeveloperMachine Learning Engineer
CredentialsBachelor's in CS, Web Development skillsBachelor's/Master's in CS, Data Science or ML specialization
Work EnvironmentWeb development teams, UI/UX focusData science teams, algorithm development
Industry UsageAI-powered web apps, interactive interfacesAI models, data pipelines, predictive systems
Search & Comparison IntentFocus on frontend AI integrationFocus on AI model development

While both roles involve AI, an Ai Frontend Developer specializes in integrating AI features into web interfaces, whereas a Machine Learning Engineer focuses on developing and deploying AI models and algorithms. The roles often collaborate but differ in technical focus and work environment.

What is an AI frontend developer?

An AI frontend developer is a professional who designs and implements user interfaces that incorporate artificial intelligence features, such as chatbots, recommendation systems, or data visualization tools. They typically work with programming languages like JavaScript and frameworks like React or Angular, and may integrate AI models using APIs or machine learning libraries to enhance user experience.
What are popular job titles related to Ai Frontend Developer jobs in Kansas? For Ai Frontend Developer jobs in Kansas, the most frequently searched job titles are:
What job categories do people searching Ai Frontend Developer jobs in Kansas look for? The top searched job categories for Ai Frontend Developer jobs in Kansas are:
What cities in Kansas are hiring for Ai Frontend Developer jobs? Cities in Kansas with the most Ai Frontend Developer job openings:
Infographic showing various Ai Frontend Developer job openings in Kansas as of August 2026, with employment types broken down into 73% Full Time, 23% Part Time, and 4% Contract. Highlights an 65% Physical, 3% Hybrid, and 32% Remote job distribution.

Full-time

Re-posted 7 days ago


Job description

Sr. Engineering Manager (AI-Native)

United States or Canada    Engineering    Full-time

Overview

We are seeking an Engineering Manager to lead and grow high-performing teams while redefining how modern, AI-native engineering organizations build and ship software.

This role is for a leader who has managed teams of 5-15+ engineers and is passionate about building systems where quality is enforced, measured, and continuously improved through automation, observability, and AI-driven workflows.

You will be responsible for driving execution, scaling teams, and embedding AI-powered development and testing practices into every stage of the SDLC. Delivering consistently high-quality, production-grade software is a key requirement of this role.

What You'll Do

Team Leadership & Execution

  • Lead, mentor, and grow a team (or teams) of 5-15+ engineers
  • Drive delivery of software that meets strict, measurable standards for quality, reliability, and maintainability
  • Establish clear expectations where quality is owned by the team and enforced through systems, not heroics
  • Foster a culture of accountability, continuous improvement, and engineering excellence

Customer Impact & Product Excellence

  • Ensure engineering decisions are grounded in customer outcomes and product impact
  • Partner closely with Product Management to translate customer needs into scalable, high-quality systems
  • Define and track metrics connecting engineering output to customer satisfaction, product adoption, and business outcomes
  • Balance speed, quality, and innovation in service of real-world user value

AI-Native Quality & Testing Systems

  • Define and implement AI-driven quality strategies across your teams
  • Build and operationalize automated and autonomous testing systems, including AI-generated test cases (unit, integration, end-to-end), self-healing test suites, and agent-assisted validation
  • Leverage LLMs and agent-based systems to continuously expand test coverage, identify edge cases, and reduce manual QA effort while increasing confidence
  • Ensure quality is continuously validated in CI/CD, not deferred to later stages

Process, Tooling & Observability

  • Design and enforce engineering processes where quality gates are automated and non-bypassable
  • Implement AI-powered tooling across the SDLC: code generation and review assistants, automated code quality and security analysis, and intelligent CI/CD pipelines with adaptive testing
  • Establish comprehensive observability including logging, metrics, tracing, alerting, and SLOs/SLIs aligned with customer expectations
  • Use production data to detect issues early, predict and prevent failures, and drive continuous evidence-based improvement
  • Track and improve key engineering metrics: test coverage, mutation testing scores, defect rates, production incident frequency, and service reliability

AI-Native Engineering Practices

  • Define and implement AI-first development workflows across your teams
  • Evaluate and integrate modern AI tooling (copilots, LLMs, agent-based systems)
  • Ensure AI adoption increases both velocity and quality
  • Stay current with emerging AI capabilities and translate them into practical engineering improvements

Technical Strategy & Execution

  • Contribute to and execute the technical roadmap in alignment with business objectives
  • Balance innovation (AI-first approaches) with long-term maintainability
  • Manage technical debt strategically to ensure sustainable velocity and system health
  • Guide architectural decisions that enable scale, reliability, and agility

What We're Looking For

Required Experience

  • 5+ years of software engineering experience
  • 3+ years of engineering management experience leading teams of 5-15+ engineers
  • Proven track record of delivering high-quality, production-grade systems with measurable outcomes
  • Experience defining and enforcing quality standards through automation and systems, not manual processes
  • Experience partnering with Product Management to deliver customer-focused solutions

Our Tech Stack

  • Languages: TypeScript, JavaScript, Python
  • Frontend: Next.js, React
  • Backend / Platform: Supabase (PostgreSQL, Auth, Edge Functions, Storage), Node/TypeScript services
  • Data: PostgreSQL (Supabase + AWS RDS during migration), Redis
  • Auth & Security: Supabase Auth, OAuth2/OIDC, GitHub, Trivy, Snyk
  • Infrastructure: AWS, Docker, Kubernetes (for supporting services), modern CI/CD
  • AI Tools: Cursor, Devin, GitHub Copilot, and modern agent frameworks where appropriate

AI-Native Mindset

  • Hands-on experience with AI-powered developer tools and workflows (e.g., Cursor, Claude, Codex, or similar)
  • Strong understanding of how to apply LLMs and agent-based systems to code generation, testing and validation, and developer productivity
  • Ability to evaluate emerging AI technologies pragmatically and integrate them into real-world systems

Quality, Observability & Systems Thinking

  • Deep understanding of modern testing strategies and quality engineering
  • Experience building or scaling automated testing frameworks, CI/CD pipelines with enforced quality gates, and observability systems (metrics, logging, tracing, alerting)
  • Experience defining and operating against SLOs/SLIs, reliability and performance targets, and data-driven engineering metrics
  • Strong bias toward automation, instrumentation, and continuous validation

Leadership & Communication

  • Strong coaching and mentoring skills
  • Ability to drive alignment and influence across teams
  • Clear communicator across technical and business contexts

Nice-to-Have (Strong Bonus)

  • Software Security / Application Security
  • Software Supply Chain Security (SCA, SBOMs, CI/CD security)
  • Experience in cybersecurity, IoT, or embedded systems domains
  • Experience in high-scale, high-reliability, or security-sensitive environments

What Success Looks Like

  • Teams deliver consistently high-quality software with measurable improvements in reliability, defect rates, and customer satisfaction
  • Automated and AI-driven testing systems provide broad, continuously improving coverage
  • Quality issues are detected early-or prevented entirely-through intelligent, data-driven systems
  • Engineering velocity increases without tradeoffs in quality, security, or stability
  • Teams rely on systems, automation, and observability-not manual effort-to maintain excellence
  • Engineering output is clearly tied to customer value and business impact
Compensation
Our salary ranges are based on experience and geographic location:
  • $230,000 - $332,000