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LLM ​/ Reasoning Engineer

Job in Charlotte, Mecklenburg County, North Carolina, 28202, USA
Listing for: United IT
Full Time position
Listed on 2026-08-05
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Job Description & How to Apply Below

LLM / Reasoning Engineer

Locations are Austin, Charlotte, San Diego, NYC-Onsite

Responsibilities

  • Design the reasoning tier: structured-output disposition schemas, context-engineered prompts and skills, and a curated exemplar set drawn from the team's own prior decisions.
  • Build and own the gold set — and measure precision, recall and confidence calibration against it.
  • Work along with the existing domain team for execution.
  • Implement abstention as a first-class output (insufficient evidence must escalate, never guess) and self-consistency sampling for high-stakes items.
  • Mine reasoning traces to extract new deterministic rules, continuously pushing items down from the model tier to the rule tier — driving cost and latency down while consistency rises.
  • Drive building the regression suite for the AI layer so that a prompt, rule or model-version change cannot silently degrade quality.
  • Partner with domain SMEs to convert their verdicts into exemplars, noise filters and rules — closing and compounding the loop.
  • Own model routing (inexpensive models for the mechanical majority, frontier models for the hard tail) and the per-cycle token budget.
  • Qualifications

    • Python — production-grade.
    • Deep production LLM application engineering: structured / schema-constrained generation, context engineering, tool use, and evaluation — not prototypes.
    • Evaluation engineering: golden sets, LLM-as-judge (and a clear-eyed view of its limits), calibration, trajectory and trace scoring, regression benchmarking.
    • A track record of making an LLM system measurably better sprint over sprint, with numbers you can quote.
    • RAG and grounding quality — retrieval precision, recall and faithfulness scoring.
    • Sound statistics and ML fundamentals; understands why same-model self-validation has correlated failure modes and designs around it.
    • AWS Bedrock / Claude (or equivalent frontier models) in production.

    Working knowledge

    • Code graphs and static analysis; SQL; relational data models.
    • Fine-tuning / PEFT; agentic orchestration frameworks; MLOps.
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