Machine Learning Engineer Lead

LexisNexis

Raleigh (NC)

On-site

USD 150,000 - 190,000

Full time

2 days ago
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Job summary

LexisNexis is seeking a Machine Learning Engineer Lead to design, build, and operate scalable AI/ML systems and agentic architectures supporting next-generation legal research and analytics products. You will lead a high-performing team, drive platform-level decisions, and ensure enterprise-grade scalability and responsible AI standards.

You will mentor 4-5 ML engineers, provide architectural guidance, and establish best practices for ML lifecycle management while aligning with data governance

Qualifications

  • 8-10 years of Machine Learning/Software Engineer experience.
  • 2-3 years of people management experience.
  • Master’s degree or Bachelor's degree in Computer Science is highly desirable.
  • Strong software engineering background with system design and AI feature development for large-scale unstructured data.
  • Experience with ML deployment to production.

Responsibilities

  • Lead, mentor, and grow a team of 4-5 ML engineers.
  • Provide architectural direction and code-level guidance.
  • Establish engineering best practices for ML system design, testing, and deployment.
  • Conduct design reviews, performance reviews, and technical roadmap planning.
  • Architect distributed ML systems serving multiple global products.
  • Standardize infrastructure patterns for LLM serving and retrieval systems.
  • Define and implement enterprise-ready agentic frameworks.
  • Architect multi-step reasoning systems.
  • Lead decisions on deterministic workflows vs. autonomous agents.
  • Implement guardrails, safety layers, and traceability mechanisms.
  • Develop evaluation frameworks to measure reasoning quality, hallucination rates, and reliability.
  • Establish CI/CD standards for ML lifecycle management.
  • Ensure compliance with enterprise data governance and responsible AI standards.

Skills

8-10 years experience
2-3 years people management
Software engineering
System design
AI features for large-scale data
ML deployment to production

Education

Master’s or Bachelor's in Computer Science

Job description

We are seeking a Machine Learning Engineer Lead to design, build, and operate scalable AI/ML systems and agentic architectures that support next-generation legal research and analytics products. This role combines deep ML expertise with distributed systems engineering and AI platform development.

In this role you will be a hands-on engineer and leader that will lead a high-performing team of 4-5 ML engineers, drive platform-level decisions, and ensure enterprise-grade scalability, reliability, and responsible AI compliance.

Responsibilities:
  • Lead, mentor, and grow a team of 4-5 ML engineers.
  • Provide architectural direction and code-level guidance.
  • Establish engineering best practices for ML system design, testing, and deployment.
  • Conduct design reviews, performance reviews, and technical roadmap planning.
  • Architect distributed ML systems serving multiple global products.
  • Standardize infrastructure patterns for LLM serving and retrieval systems.
  • Define and implement enterprise-ready agentic frameworks.
  • Architect multi-step reasoning systems.
  • Lead decisions on deterministic workflows vs. autonomous agents.
  • Implement guardrails, safety layers, and traceability mechanisms.
  • Develop evaluation frameworks to measure reasoning quality, hallucination rates, and reliability.
  • Establish CI/CD standards for ML lifecycle management.
  • Ensure compliance with enterprise data governance and responsible AI standards.
Requirements
  • 8-10 years of Machine Learning/Software Engineer experience
  • 2-3 years of people management experience.
  • Master’s degree or bachelor's degree, computer science degree is highly desirable.
  • Strong software engineering background with experience in building system design, architecting AI feature/products that caters large number of users and deals with large volume of unstructured data
  • Experience with ML deployment to production
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