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Manager Data Science – LLM Training and Team Lead

relx · HB San Francisco

New
115,400 - 192,300 USD/year 🇬🇧 English
Python PyTorch Hugging Face Transformers LoRA QLoRA Distributed training PyTorch FSDP DeepSpeed Experiment tracking

Job description

About the role

A Manager Data Science at LexisNexis Legal & Professional is an emerging subject‑matter expert who leads a team of junior data scientists. The role combines technical leadership with mentorship, ensuring best‑practice adoption while defining innovative approaches to business problems.

Key responsibilities

  • Lead design and execution of LLM training and fine‑tuning projects, including model selection, strategy, experimentation, and evaluation.
  • Oversee creation of high‑quality training datasets: collection, cleaning, deduplication, annotation, and validation.
  • Develop and optimise supervised and parameter‑efficient fine‑tuning workflows, applying preference‑optimisation methods where appropriate.
  • Establish evaluation frameworks for factual accuracy, instruction following, domain relevance, safety and business‑specific performance.
  • Diagnose training issues, improve model quality, training stability, GPU utilisation and computational efficiency.
  • Mentor and manage data scientists, review technical work and enforce reproducible development practices.
  • Partner with product, engineering and domain experts to define requirements, support model deployment and monitoring.
  • Manage project priorities, timelines, compute resources and communicate results and trade‑offs to stakeholders.

Required profile

  • Strong understanding of transformer architectures, attention mechanisms, tokenisation and LLM training fundamentals.
  • Proficient in Python and PyTorch, with hands‑on experience using Hugging Face Transformers and Datasets.
  • Demonstrated ability to implement supervised fine‑tuning, hyper‑parameter tuning and checkpoint selection.
  • Experience with parameter‑efficient fine‑tuning techniques such as LoRA or QLoRA.
  • Skilled in GPU‑accelerated and distributed training using frameworks like PyTorch FSDP or DeepSpeed.
  • Ability to design reliable benchmarks, conduct human evaluations and troubleshoot training instability.

Required skills

  • Python
  • PyTorch
  • Hugging Face Transformers & Datasets
  • LoRA / QLoRA
  • GPU and distributed training (FSDP, DeepSpeed)
  • Experiment tracking and versioning

What we offer

  • Healthy work‑life balance with flexible, remote working hours.
  • Wellbeing initiatives, shared parental leave, study assistance and sabbaticals.
  • Annual incentive bonus and a base salary range of $115,400 – $192,300 per year.

Questions fréquentes

Le salaire proposé pour ce poste est de 115-192k USD par an. Le détail figure dans l'annonce.
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Source : ats:workday

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Published 20 hours ago

Expires 1 month from now

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relx

HB San Francisco