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Full-Stack AI Developer

Job in Charlotte, Mecklenburg County, North Carolina, 28211, USA
Listing for: TalentBridge
Full Time position
Listed on 2026-05-20
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software)
Job Description & How to Apply Below
Role:
Full Stack AI Engineer

Location:
Charlotte NC (hybrid)

Employment Type:
Fulltime


Position Summary:
  • We are seeking a Full Stack AI Engineer who combines strong software engineering fundamentals with applied AI creativity. This role plays a foundational part in shaping the company’s AI and automation strategy—architecting, building, and deploying intelligent tools that transform how the business operates.
  • You will own full-stack development of AI-driven internal tools, partner directly with operators and business units, and help build an internal culture of AI adoption. This role requires high ownership, strong execution, and a passion for building practical, real-world AI solutions.
Qualifications:
  • 4–7+ years of professional experience in software engineering with modern web frameworks.
  • Strong Python experience in production environments.
  • Experience shipping applied LLM features into production (not just prototypes), including summarization, extraction, classification, routing, or operator-assist workflows.
  • Experience building RAG systems end-to-end including document ingestion pipelines, chunking strategy iteration, retrieval, and context assembly.
  • Experience building agent or tool-calling workflows where models trigger tools or actions with clear contracts and safety boundaries.
  • Experience delivering software used by real operators including review flows, exception handling, auditability, and measurable improvement.
  • Strong communication and problem translation skills with the ability to turn ambiguous operational needs into deployable workflows with clear success metrics.
  • Experience integrating with call center or transcript systems is preferred.
  • Experience integrating with CRM or ERP platforms is preferred.
  • Experience with evaluation practices for LLM systems such as sampling strategies, rubric-based scoring, regression checks, and prompt versioning is preferred.
  • Strong REST API design experience, with versioning best practices preferred.
  • Experience with asynchronous processing and pipeline-style workloads.
  • Experience building internal or administrative user interfaces (React experience preferred).
  • Familiarity with cloud deployment, CI/CD pipelines, and environment configuration.
Key Responsibilities:
Build AI-Powered Internal Tools
  • Design, prototype, and deploy full-stack AI applications using Python frameworks (FastAPI/Django) and modern front-end frameworks (React/Next.js).
  • Develop AI-powered capabilities including summarization, classification, routing, extraction, and workflow automation.
  • Build operator-facing tools such as review queues, exception handling, and traceability views to ensure AI outputs are trusted and usable.
Architect and Scale AI Foundations:
  • Design and implement reliable retrieval-augmented generation (RAG) systems including ingestion pipelines, embeddings, vector search, and context assembly.
  • Build scalable patterns for APIs, cloud deployment, CI/CD, and AI service orchestration.
  • Anticipate and mitigate common LLM failure modes including irrelevant retrieval, missing context, hallucinated outputs, and stale data.
Automate Operational Workflows:
  • Identify manual workflows across operations, sales, finance, and field teams and replace them with AI-enabled automation.
Build systems that follow structured pipelines:
  • ingestion → retrieval → agent/tool execution → human review → measurement
  • Design human-in-the-loop workflows with clear escalation paths, editable outputs, and feedback capture.
Integrate AI Into Core Business Systems:
  • Build integrations with operational systems including Service Titan, call center platforms, and internal data systems.
  • Develop transcript-driven workflows such as call summaries, lead qualification insights, automated tagging, and routing.
  • Ensure workflows operate reliably within real-world constraints including messy data, timing dependencies, and operational handoffs.
Build Agent & Tool Execution Systems:
  • Develop agent-based workflows that trigger tools to perform operational actions such as updating records, retrieving context, or triggering workflows.
  • Implement safe tool-calling patterns including defined input/output contracts, validation, retries, and permission scoping.
  • Ensure systems remain observable through logging, intermediate traces, and measurable outcomes.
Cross-Functional Collaboration:
  • Partner with operators, engineering teams, and leadership to identify high-impact AI opportunities.
  • Translate ambiguous business problems into deployable AI workflows.
  • Communicate technical concepts clearly to non-technical stakeholders and support AI adoption across the organization.
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