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LLM Inference GPU Systems Consultant

Job in Charlotte, Mecklenburg County, North Carolina, 28245, USA
Listing for: Delan Associates, Inc
Full Time position
Listed on 2026-08-22
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 150000 - 210000 USD Yearly USD 150000.00 210000.00 YEAR
Job Description & How to Apply Below

Job Title:

LLM Inference & GPU Systems Consultant

Location:

Charlotte, NC (Onsite)

Duration: 6+ Months

Must be onsite at client in Charlotte, NC at least 3 days/week

Role Overview

We are seeking an AI Infrastructure Runtime Engineer to build and maintain large-scale on-prem LLM infrastructure. This is an enterprise private GenAI environment running on NVIDIA H200 GPU clusters and an Open Shift AI deployment ecosystem. You will manage production inference internally, including self-hosting open-source LLMs like Llama. We are focused exclusively on inferencing; this role involves no model training infrastructure or fine-tuning pipelines.

Key Responsibilities
  • NVIDIA GPU Runtime Optimization:
    Drive extreme runtime efficiency and optimization for the token generation pipeline. Specifically manage prefill/decode optimization and KV cache management.
  • Inference Serving:
    Deploy and manage inference engines including vLLM and TensorRT-LLM.
  • Hardware Utilization:
    Optimize GPU throughput tuning, batching strategies, and latency optimization. Manage workload orchestration using RunAI and Kubernetes GPU orchestration.
  • Model Lifecycle Management:
    Oversee the complete Hugging Face model lifecycle, including model onboarding, deployment, and retirement.
  • Platform Operations:
    Operate and maintain the Open Shift AI ecosystem as the primary container platform for GenAI workloads.
Required Qualifications
  • 8+ years experience working as an LLM Systems Engineer or AI Infrastructure Runtime Engineer.
  • 8+ years hands-on experience with NVIDIA H200 clusters and runtime optimization techniques (KV Cache, prefill/decode).
  • Proficiency in Open Shift AI and GPU orchestration tools like RunAI.
  • Strong experience with modern inference frameworks, specifically vLLM and TensorRT-LLM.
  • Proven track record managing the Hugging Face deployment lifecycle.
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