Applied AI Scientist – R&D and Regulatory
@ Amneal IndiaApplied AI Scientist – R&D and Regulatory
About the job
Amneal's AI team develops advanced AI systems for pharma regulatory and R&D, focusing on NLP, document analysis, and validation to support product development and compliance.
Requirements
- Expertise in natural language processing
- Experience with AI model validation
- Data pipeline development skills
- Knowledge of GxP standards
- Proficiency in Python and Databricks
Qualifications
- Degree in computer science or related
- Experience in pharma or regulated environments
- Strong analytical skills
- Attention to detail
- Effective communication skills
Full job description
The Applied AI Scientist — R&D and Regulatory builds and deploys AI systems that accelerate product development and regulatory submissions. The role applies natural language processing, document intelligence, and generative AI to Amneal's scientific and regulatory content, delivering validated systems that meet GxP and 21 CFR Part 11 requirements and are defensible under health authority inspection. The role sits within the Enterprise AI Transformation function, working in close partnership with Regulatory Affairs and R&D.
Essential Functions:
Regulatory & Scientific Agents
- Build models that analyze historical health authority correspondence — deficiency letters, information requests, and complete response letters — to identify recurring deficiency patterns and flag submission risk prior to filing.
- Develop retrieval and generation agentic systems over controlled scientific content including specifications, analytical methods, stability data, prior filings, and eCTD, with full traceability from output to source.
- Build AI-assisted drafting and comparison capability for product labeling, including structured product labeling content and reference listed drug comparison.
AI Solution Development
- Design and maintain formal evaluation frameworks for all generative systems, including curated golden datasets, defined failure taxonomies, and automated regression testing.
- Execute AI system validation under Amneal's GxP AI validation framework: risk classification, intended-use definition, qualification testing, and periodic review.
- Build and maintain production data pipelines on Databricks over unstructured scientific documents, including OCR, parsing, and entity extraction from legacy PDF sources.
Business Impact
- Establish benefit baselines with Regulatory and R&D functional owners and measure realized cycle-time and capacity outcomes.
- Present technical approaches, validation evidence, and model limitations to Regulatory, and R&D leadership.
- Enable larger organization and educate to upskill on usage and application of agentic systems.
Research and Portfolio Insights
- Develop literature, patent, and prior-art mining capabilities supporting product development screening and portfolio prioritization.
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