AI/ML Engineer - NLP Scientist

Posted Yesterday
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South San Francisco, CA, USA
In-Office
80-85 Hourly
Senior level
HR Tech • Information Technology • Professional Services • Consulting
The Role
Build production-grade AI and NLP systems that verify generated claims against scientific, clinical, regulatory, and reference materials. Responsibilities include hybrid evidence retrieval, claim decomposition, entailment and contradiction detection, confidence scoring, abstention logic, human review workflows, evaluation dataset creation, error analysis, and traceable citation-based decisions. Collaborate with Medical, Legal, Regulatory, and scientific stakeholders to deliver high-stakes, reproducible AI solutions.
Summary Generated by Built In
Our client, a world leader in biotechnology and life sciences, is looking for a “Senior AI/ML Engineer - NLP Scientist”. 

Location: South San Francisco, CA
Job Duration: Long-Term Contract (Possibility Of Extension)
Rate: $80-$85/hr on W2
Company Benefits: Medical, Paid Sick Leave, 401 (k)

We are seeking a Senior AI/ML Engineer to build an evidence-grounded AI capability that verifies generated claims against approved scientific, clinical, regulatory, and reference materials before human review. The system will retrieve relevant evidence, decompose claims into verifiable assertions, evaluate evidence support, and provide traceable decisions with citations. The system must recognize unsupported or contradicted claims and abstain rather than guess.


Key Responsibilities
  • Build production-grade Python/NLP pipelines for claim verification and evidence attribution.

  • Develop hybrid retrieval using lexical and vector search to identify relevant evidence.

  • Implement claim decomposition, natural language inference (NLI), entailment, and contradiction detection.

  • Evaluate whether generated claims are genuinely supported by cited evidence.

  • Design confidence thresholds, abstention logic, escalation rules, and human-in-the-loop workflows.

  • Build evaluation datasets with expert annotation guidelines and measure inter-annotator agreement.

  • Track false approvals, false rejections, abstentions, and other error categories.

  • Develop traceable systems that allow decisions to be reconstructed based on model version, evidence, citations, and reviewer actions.

  • Work with Medical, Legal, Regulatory, and scientific stakeholders to translate review requirements into technical solutions.

Required Skills

  • Strong Python production engineering.

  • NLP / LLM / Generative AI development.

  • RAG, hybrid search, vector search, and lexical retrieval.

  • Natural Language Inference (NLI), entailment, contradiction detection.

  • Claim decomposition and evidence attribution.

  • LLM/model APIs and production evaluation frameworks.

  • AI/ML evaluation, benchmarking, and error analysis.

  • Human-in-the-loop AI, confidence scoring and abstention.

  • Experience with scientific, technical, regulatory, legal, or other high-stakes content.

  • Experience creating expert-labeled datasets and annotation guidelines.

  • Strong understanding of traceability, citations, and reproducible AI decisions.

Preferred Skills

  • Knowledge graphs and relationships between claims, evidence, references, products, and indications.

  • Deterministic rules + ML/LLM decision systems.

  • Pharmaceutical, biotech, healthcare, regulatory, legal, financial compliance, or scientific

    publishing experience.

  • Familiarity with clinical studies, statistics, scientific literature, and citation practices.

  • Experience with LangChain, LlamaIndex, Hugging Face, PyTorch, or similar NLP/

    LLM frameworks


If interested, please share your updated resume at [email protected]/[email protected]


Skills Required

  • Strong Python production engineering experience
  • NLP, LLM, and Generative AI development experience
  • Experience with RAG, hybrid search, vector search, and lexical retrieval
  • Experience with Natural Language Inference, entailment, and contradiction detection
  • Experience with claim decomposition and evidence attribution
  • Experience with LLM or model APIs and production evaluation frameworks
  • Experience with AI/ML evaluation, benchmarking, and error analysis
  • Experience with human-in-the-loop AI, confidence scoring, and abstention
  • Experience with scientific, technical, regulatory, legal, or other high-stakes content
  • Experience creating expert-labeled datasets and annotation guidelines
  • Strong understanding of traceability, citations, and reproducible AI decisions
  • Knowledge of knowledge graphs and relationships among claims, evidence, references, products, and indications
  • Experience with deterministic rules combined with ML or LLM decision systems
  • Pharmaceutical, biotech, healthcare, regulatory, legal, financial compliance, or scientific publishing experience
  • Familiarity with clinical studies, statistics, scientific literature, and citation practices
  • Experience with LangChain, LlamaIndex, Hugging Face, PyTorch, or similar NLP/LLM frameworks
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The Company
Year Founded: 2009

What We Do

Dawar Consulting Inc. is a professional services and staff augmentation firm specializing in IT consulting, workforce solutions, and HCM/HRIS services. They provide technology and business consulting, project delivery, and IT support to help clients achieve their strategic goals. With expertise across IT, Engineering, and Finance, they deliver best-in-class workforce solutions and innovative strategies to drive operational efficiency and business success.

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