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THThomson Reuters

Applied Scientist, NLP/GenAI(m/w/x)

Zug
Full-timeWith Home OfficeExperienced
AI/ML
Data Science

Developing AI pipelines for legal document understanding, knowledge extraction, and synthetic data generation at a legal, tax, and media content provider. 3+ years building/deploying deep learning/LLM-based document understanding systems required. Work from anywhere for up to 8 weeks per year.

Requirements

  • PhD in Computer Science, AI, NLP, or related field, or Master's with equivalent research/industry experience
  • 3+ years experience building/deploying document understanding, information extraction, or knowledge graph systems (deep learning, LLMs, NLP)
  • Ability to translate complex document understanding problems into innovative AI applications
  • Professional experience scaling and leading in applied research
  • Strong programming skills (Python) and modern deep learning frameworks experience
  • Publications at relevant venues (ACL, EMNLP, ICLR, NeurIPS, SIGIR, KDD)
  • Deep understanding of document understanding fundamentals (layout analysis, semantic chunking, classification, taxonomies, multi-label, domain schemas)
  • Expertise in knowledge extraction and knowledge graph construction (entity recognition, relation extraction, citation parsing, graph representations)
  • Expertise in LLM-based information extraction, few-shot/multi-task learning, post-training, knowledge distillation
  • Solid understanding of synthetic data generation techniques for NLP (query-answer generation, data augmentation)
  • Solid understanding of efficiency optimization (knowledge distillation, model compression, SLM-based solutions)
  • Solid understanding of DL/ML approaches for NLP tasks
  • Experience designing annotation workflows, creating labeled datasets, and developing evaluation frameworks
  • Prior work on legal document understanding, information extraction, knowledge representation (legal citations, domain concepts), or legal AI applications
  • Prior work handling complex legal document structures (non-uniform formatting, nested hierarchies, cross-references, embedded elements)
  • Experience building systems for analysis, question answering, or retrieval across large document collections
  • Experience with knowledge graph frameworks/methodologies for legal or enterprise applications
  • Understanding of RAG and agentic workflows for enterprise knowledge
  • Publications at relevant venues (ACL, EMNLP, ICLR, NeurIPS, SIGIR, KDD)
  • Experience with AzureML or AWS SageMaker

Tasks

  • Develop and deploy AI solutions for legal document understanding.
  • Develop advanced models for semantic chunking lengthy legal documents.
  • Build document enrichment systems for classification and rich metadata extraction.
  • Create LLM-based pipelines for extracting and linking legal knowledge.
  • Develop scalable synthetic data generation systems.
  • Support model training with synthetic data.
  • Simulate complex legal research queries.
  • Generate hallucination-free answers.
  • Collaborate with engineering for software delivery and reliability.
  • Develop comprehensive data and evaluation strategies.
  • Leverage human annotation and synthetic data for evaluation.
  • Apply robust training and evaluation methodologies.
  • Balance model performance with latency requirements for SLM solutions.
  • Apply knowledge distillation to compress models into efficient SLMs.
  • Determine appropriate architectures for challenging document understanding.
  • Develop semantic chunking strategies for diverse documents.
  • Design document classification approaches for legal taxonomies.
  • Implement LLM-based knowledge extraction methods.
  • Build multi-document reasoning architectures.
  • Balance accuracy, efficiency, and scalability for real-world challenges.
  • Partner with Engineering and Product to translate legal challenges.
  • Engage stakeholders to understand use case requirements.
  • Align document understanding capabilities with business needs.
  • Maintain scientific and technical expertise in relevant areas.

Work Experience

3 years

Education

Master's degree

Languages

EnglishBusiness Fluent

Tools & Technologies

PythonPyTorchHugging Face TransformersDeepSpeedLLMsSLMRAGAzureMLAWS SageMaker

Benefits

Flexible Working

  • Flexible hybrid work environment
  • Flex My Way policies
  • Flexible work arrangements

Workation & Sabbatical

  • Work from anywhere for up to 8 weeks per year

Family Support

  • Work-life balance

Learning & Development

  • Culture of continuous learning
  • Skill development
  • Grow My Way programming

Other Benefits

  • Skills-first approach

More Vacation Days

  • Flexible vacation

Mental Health Support

  • Two company-wide Mental Health Days off
  • Access to Headspace app
  • Resources for mental wellbeing

Retirement Plans

  • Retirement savings

Additional Allowances

  • Tuition reimbursement
  • Resources for financial wellbeing

Bonuses & Incentives

  • Employee incentive programs

Healthcare & Fitness

  • Resources for physical wellbeing

Social Impact

  • Two paid volunteer days off annually
  • Pro-bono consulting project opportunities

Sustainability Focus

  • ESG initiative involvement opportunities
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