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Principal AI Full-Stack Developer

Job in Grand Rapids, Kent County, Michigan, 49528, USA
Listing for: BISSELL, Inc.
Full Time position
Listed on 2026-01-20
Job specializations:
  • Software Development
    AI Engineer, Full Stack Developer
Salary/Wage Range or Industry Benchmark: 150000 - 200000 USD Yearly USD 150000.00 200000.00 YEAR
Job Description & How to Apply Below

Overview

We are seeking a Principal AI Full-Stack Developer with a strong foundation in software engineering to design, develop, and deploy intelligent applications that leverage AI capabilities across the enterprise technology stack. This role is ideal for an experienced engineer with deep expertise in programming logic, application architecture, and modern development frameworks, who can seamlessly integrate AI into scalable, production‑grade systems. The position combines advanced full‑stack development skills with a strong understanding of AI integration, including embedding LLM’s, agents, and RAG connections across web and mobile applications.

This role will own end-to‑end application development, from front‑end experiences and back‑end services to AI orchestration, APIs, and cloud deployment. You will partner closely with enterprise architects, product managers, automation teams, and data scientists to embed AI into real business workflows and accelerate AI‑first engineering practices across the organization.

Responsibilities
  • Own the full lifecycle of AI‑enabled solutions, from ideation and architecture to deployment and ongoing optimization.
  • Design, develop, and maintain full‑stack applications that integrate AI/LLM capabilities into user‑facing and backend systems.
  • Architect and implement AI integrations using platforms and frameworks such as OpenAI, Azure OpenAI, AWS Bedrock, Gemini, and similar orchestration frameworks.
  • Influence long‑term AI roadmap decisions, advising executive leadership (VP/CIO, CTO) on platform strategy, model lifecycle planning, and capability investments.
  • Leadership of an AI Engineering Guild and Community of Practice. Mentor and coach developers, analysts, and automation engineers on AI‑first engineering patterns, tools, and best practices,
  • Work closely with Enterprise Architecture and co‑lead design reviews and approve architectural decisions related to AI systems, data flows, security boundaries, and integration patterns.
  • Build, deploy, and maintain AI agents as part of full‑stack, production‑grade software systems.
  • Integrate AI agents with all development and operational tools (e.g., Linear, Git Hub, Datadog, Sentry, internal platforms) to maximize context and productivity. Proactively address and resolve any access barriers that limit agent effectiveness.
  • Build scalable backend services using Node.js and Python.
  • Develop modern, responsive front‑end applications using React.
  • Design and maintain RESTful and event‑driven APIs that expose AI‑driven functionality.
  • Collaborate with Automation and Platform teams to embed LLMs into automated workflows and enterprise processes.
  • Apply strong software engineering fundamentals (data structures, algorithms, design patterns, and clean architecture) when building AI‑enabled systems.
  • Ensure all AI‑powered features leverage the latest generation models, migrating off legacy models as soon as robust evaluations support the change. Maintain a rapid upgrade cadence to maximize product performance and value.
  • Lead technical enablement efforts by creating reusable AI components, SDKs, internal tooling, and reference architecture.
  • Champion AI engineering best practices, including prompt engineering, evaluation strategies, versioning, observability, and responsible/ethical AI use.
  • Support cloud‑native deployment of AI‑enabled applications across AWS, Azure, or GCP environments.
  • Architect and oversee the implementation of advanced AI solutions, including multi‑agent systems and generative AI platforms.
  • Lead technical due diligence for new AI technologies and vendors.
  • Implement embedding‑based semantic search across all product surfaces, replacing legacy fuzzy search algorithms for superior relevance and accuracy.
  • Stay current with emerging AI technologies and assess their applicability to enterprise software solutions.
Accountability
  • Deliver production‑ready, maintainable, and secure AI‑enabled applications aligned with enterprise standards.
  • Ensure AI solutions meet requirements for availability, performance, scalability, security, and compliance.
  • Drive standardization of AI development patterns, deployment pipelines, and operational practices.
  • Empower…
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