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LLM/GENAI Prototyping Specialist
Job in
New City, Rockland County, New York, 10956, USA
Listed on 2026-02-15
Listing for:
Atlas
Full Time
position Listed on 2026-02-15
Job specializations:
-
IT/Tech
AI Engineer, Data Scientist
Job Description & How to Apply Below
You will help stand up and scale early-stage LLM and agent-based solutions as part of a Life Sciences Cloud transformation program. This role focuses on rapid prototyping and maturation of AI-powered assistants that support internal users through training, hypercare, and operational enablement—particularly over large volumes of unstructured content.
You will translate ambiguous business needs into concrete LLM behaviors, design retrieval-augmented generation (RAG) solutions, and collaborate closely with training, product, field, and engineering stakeholders to deliver practical, high-impact AI capabilities.
This is a contract role, remote-first, with NYC or Collegeville proximity as a nice-to-have.
Job Responsibilities- Design, prototype, and iterate on LLM-powered assistants for training, hypercare, and operational enablement use cases
- Convert loosely defined requests (e.g., "how-do-I assistant" or knowledge companion) into clear conversational flows, system prompts, and grounding strategies
- Build and tune RAG pipelines over unstructured document sets, including:
- Metadata and tagging design
- Ensure retrieval logic, prompt design, and response behavior are tuned holistically
- Take prototypes from proof-of-concept to more robust, enterprise-ready solutions by:
- Designing evaluation datasets and test cases
- Iterating to improve accuracy, consistency, and latency
- Partner with training, product, and field stakeholders to operationalize content and prioritize high-value use cases
- Collaborate effectively with platform and data engineers within an enterprise application ecosystem
- Focus on pragmatic, "base-hit" AI use cases that measurably improve day-to-day workflows for end users
- 2–3+ years of hands-on experience with GPT-class models or equivalent LLMs
- Strong expertise in prompt engineering, system prompt design, and grounding strategies
- Practical experience building retrieval-augmented generation (RAG) systems over unstructured content
- Clear understanding of how chunking, retrieval, and prompting interact as a system
- Experience embedding LLM capabilities into enterprise applications (e.g., Salesforce, Service Now, Dynamics, SAP, or custom internal platforms)
- Experience working in or adjacent to regulated environments (life sciences, healthcare, or financial services preferred)
- Ability to operate independently in a fast-moving, prototype-driven environment
- Strong communication skills and comfort working directly with non-technical stakeholders
- Familiarity with Salesforce AI capabilities, including Agent Force or Einstein
- Prior work on training assistants, hypercare tools, or knowledge-based AI companions
- Familiarity with AWS fundamentals (e.g., S3, Lambda) and data pipelines
- Life sciences, pharma, or other highly regulated industry experience
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