Manager Data Science**Home based San Francisco, CA

LexisNexis

San Francisco (CA)

On-site

USD 115,000 - 192,000

Full time

4 days ago
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Job summary

LexisNexis Legal & Professional is seeking a Manager Data Science in San Francisco to lead a team of data scientists. You will design and oversee LLM training, fine-tuning, and evaluation, while ensuring reproducible development practices and collaboration with product and engineering teams.

You will manage datasets, optimize training workflows, and mentor junior team members to deliver high-quality AI solutions aligned with business needs.

Qualifications

  • LLM fundamentals including transformer architectures and training objectives.
  • Experience with supervised fine-tuning and objective tuning.
  • Knowledge of parameter-efficient fine-tuning and tradeoffs.

Responsibilities

  • Lead design and execution of LLM training and fine-tuning projects.
  • Oversee high-quality training datasets: collection, cleaning, deduplication, annotation, validation.
  • Develop and optimize supervised fine-tuning and PEFT workflows.
  • Establish evaluation frameworks for accuracy, safety, and task performance.
  • Diagnose training issues and improve model quality and efficiency.
  • Mentor data scientists and enforce reproducible development practices.
  • Partner with product, engineering and domain experts for deployment needs.
  • Prioritize projects, manage timelines and compute resources.

Skills

LLM fundamentals
Python programming
PyTorch
Hugging Face Transformers
SFT (supervised fine-tuning)
PEFT (LoRA/QLoRA)
Data engineering for datasets
GPU & distributed training
Experiment tracking & reproducibility
Model evaluation & debugging
Checkpoint management & versioning

Tools

Python
PyTorch
Hugging Face Transformers
Datasets
PyTorch FSDP
DeepSpeed
LoRA
QLoRA

Job description

About The Business

LexisNexis Legal & Professional® provides legal, regulatory, and business information and analytics that help customers increase their productivity, improve decision-making, achieve better outcomes, and advance the rule of law around the world. As a digital pioneer, the company was the first to bring legal and business information online with its Lexis® and Nexis® services.

About The Role

A Manager Data Science is an emerging subject matter expert in their domain. They lead a team of junior members to support their development and work product. They are mindful of best practices and train their team in the execution of those best practices. They manage a team to define new best practices and innovative approaches to new business problems or use cases.

Responsibilit
  • Lead the design and execution of LLM training and fine-tuning projects, including model selection, training strategy, experimentation, and evaluation.
  • Oversee the preparation of high-quality training datasets, including data collection, cleaning, deduplication, annotation, and quality validation.
  • Develop and optimize supervised fine-tuning and parameter-efficient fine-tuning workflows; apply preference optimization methods where appropriate.
  • Establish evaluation frameworks to assess factual accuracy, instruction following, domain relevance, safety, and performance on business-specific tasks.
  • Diagnose training issues and improve model quality, training stability, GPU utilization, and computational efficiency.
  • Manage and mentor data scientists, review technical work, and establish reproducible development practices.
  • Partner with product, engineering, and domain experts to define requirements and support model deployment and monitoring.
  • Manage project priorities, timelines, and compute resources, and communicate results and tradeoffs to stakeholders.
Requirements
  • LLM fundamentals: Strong understanding of transformer architectures, attention mechanisms, tokenization, language modeling objectives, and the differences between pretraining, continued pretraining, and fine-tuning.
  • Programming and frameworks: Strong Python and PyTorch skills, with practical experience using Hugging Face Transformers, Datasets, or equivalent tools.
  • Hands-on LLM training: Demonstrated ability to implement supervised fine-tuning (SFT), configure training objectives and loss masking, tune hyperparameters, and select model checkpoints.
  • Efficient fine-tuning: Practical experience with parameter-efficient fine-tuning (PEFT), including LoRA or QLoRA, and an understanding of their quality, memory, and compute tradeoffs.
  • Training data engineering: Ability to build instruction-response datasets, apply chat templates, manage sequence lengths and packing, and prevent data leakage and evaluation contamination.
  • GPU and distributed training: Experience training models across multiple GPUs using frameworks such as PyTorch FSDP or DeepSpeed, including mixed precision, gradient accumulation, and gradient checkpointing.
  • Evaluation and debugging: Ability to design reliable benchmarks and human evaluations, analyze model errors, and troubleshoot unstable loss, overfitting, and GPU memory issues.
  • Reproducibility: Experience with experiment tracking, dataset and model versioning, checkpoint management, and documented training pipelines.
Work in a Way That Works for You

We promote a healthy work/life balance across the organisation. We offer an appealing working prospect for our people. With numerous wellbeing initiatives, shared parental leave, study assistance and sabbaticals, we will help you meet your immediate responsibilities and your long-term goals.

Working Pattern

Working flexible hours - flexing the times when you work in the day to help you fit everything in and work when you are the most productive.

About The Business

LexisNexis Legal & Professional® provides legal, regulatory, and business information and analytics that help customers increase their productivity, improve decision-making, achieve better outcomes, and advance the rule of law around the world. As a digital pioneer, the company was the first to bring legal and business information online with its Lexis® and Nexis® services.

U.S. National Base Pay Range: $115,400 - $192,300. Geographic differentials may apply in some locations to better reflect local market rates. This job is eligible for an annual incentive bonus.

We know your well-being and happiness are key to a long and successful career. We are delighted to offer country specific benefits. Click here to access benefits specific to your location.

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