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Machine Learning Engineer at Gravity IT Resources Nashville, TN
Job in
Nashville, Davidson County, Tennessee, 37247, USA
Listed on 2026-07-08
Listing for:
Shell Lubricants Hub Hamburg
Full Time
position Listed on 2026-07-08
Job specializations:
-
Software Development
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, DevOps, Cloud Engineer - Software
Job Description & How to Apply Below
Job Description
Machine Learning Engineer
Employment Type: Full-Time
Location: Nashville, TN (hybrid)
About the RoleWe’re hiring a Maching Learning Engineer to design and deploy AI systems end-to-end — from data preparation and evaluation to model fine-tuning, inference, and agentic workflows. You’ll work closely with product and engineering teams to deliver reliable, cost-effective, and scalable LLM-powered solutions on AWS.
What You’ll Do- End-to-End GenAI Solutions: Scope problems, choose the right approach (prompt engineering, fine-tuning, agents), implement, evaluate, and deploy.
- Data & SQL: Write efficient SQL for analytics and data prep; manage schemas and pipelines for model training and inference.
- Model Training & Fine-Tuning: Run supervised fine-tuning (PEFT/LoRA/QLoRA), optimize prompts, and manage experiment tracking/evaluation.
- Agentic Systems: Build agent workflows with tool use, memory, and safety/guardrails.
- Inference & Deployment: Package services with Docker, optimize latency and cost (batching, caching, quantization), and deploy on AWS (ECS, EKS, Sage Maker, Lambda with GPU acceleration).
- MLOps & Observability: Set up CI/CD for models/prompts; maintain offline/online evaluation pipelines, monitoring, and rollback strategies.
- Security & Compliance: Implement data governance, PHI/PII protections, and guardrails against prompt injection and unsafe outputs.
- Cross-Functional Collaboration: Work with product managers and engineers to align GenAI capabilities with product goals; clearly document and communicate trade-offs.
- Production Readiness: Lead conversations around scaling, monitoring, and maintaining GenAI systems in production environments.
- 5+ years of Software/ML engineering experience, including 2+ years building and deploying GenAI/LLM systems.
- MS/PhD in Computer Science, Data Science, or equivalent experience.
- Strong SQL and Python skills with solid software engineering fundamentals.
- Experience with agent frameworks (Lang Graph, Auto Gen, CrewAI) and tool-driven agents.
- Hands‑on with deep learning (PyTorch or Tensor Flow) and LLM fine‑tuning (SFT/PEFT like LoRA/QLoRA).
- Production experience with Docker and AWS (ECS, EKS, Sage Maker, Lambda, or GPU services).
- Experience building scalable data and model pipelines for training and deployment.
- Familiarity with prompt engineering, evaluation frameworks (LLM‑as‑judge, metrics), and offline test harnesses.
- Understanding of security & compliance for sensitive data (e.g., PHI/PII).
- Excellent problem‑solving, communication, and documentation skills.
- Experience with inference optimization: quantization (bitsandbytes, GPTQ/AWQ), batching, caching, or vLLM.
- Background in healthcare, including HIPAA compliance or medical data handling.
- Experience with experiment tracking (MLflow, W&B), CI/CD for ML, and monitoring tools (Prometheus, Grafana).
- Familiarity with major LLM APIs and open‑source models (OpenAI, Anthropic, Llama, Mistral).
- Languages: Python, SQL
- DL/LLM: PyTorch, Tensor Flow, Hugging Face, PEFT/TRL, vLLM
- Data: Snowflake, Postgres
- Cloud: AWS (ECS, EKS, Sage Maker, Lambda)
- MLOps: Docker, CI/CD, MLflow, or W&B
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