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Senior Machine Learning Engineer

entrata Lehi, Utah

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  • open for 400 days (90+ without a fill is a strong ghost signal)
  • 23 open roles at this company in 30 days (mass-hiring blitz)

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About the role

Responsibilities

Fine-tune and adapt large language models for Entrata-specific use cases using supervised fine-tuning and other post-training techniques.

Build scalable data preparation, curation, filtering, and synthetic data pipelines to support model training and evaluation.

Develop agentic AI systems that can reason across multi-step workflows, use tools, retrieve context, and operate reliably in production.

Build evaluation frameworks and benchmarks to measure model quality, safety, reliability, and task performance.

Optimize model inference, serving, and deployment for performance, cost, and scalability.

Partner with engineering, product, and data teams to integrate AI capabilities into Entrata products and workflows.

Help establish best practices for model experimentation, fine-tuning, evaluation, and deployment.

Minimum Qualifications

5+ years of software engineering or machine learning engineering experience.

Hands-on experience fine-tuning, adapting, or deploying large language models.

Strong proficiency with Python and PyTorch or similar deep learning frameworks.

Experience building ML data pipelines, training workflows, and evaluation systems.

Experience deploying machine learning models into production environments.

Familiarity with modern LLM tooling, model serving, and inference frameworks.

Strong understanding of machine learning fundamentals and model performance tradeoffs.

Preferred Qualifications

Experience with supervised fine-tuning, preference optimization, or related post-training techniques.

Experience building agentic systems, tool-using models, or retrieval-based AI applications.

Experience with distributed training or GPU-based model workloads.

Familiarity with frameworks such as vLLM, DeepSpeed, FSDP, or similar technologies.

Experience working with enterprise or domain-specific AI applications.

Bachelor’s or advanced degree in Computer Science, Machine Learning, Engineering, or a related field, or equivalent practical experience.

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