
Pocketpills
Actively Hiring
PocketPills is the easiest way to fill prescriptions and manage medications
- B2C
- B2B
- Growth StageExpanding market presence
Job Location
Remote Work Policy
In office - WFH flexibility
Visa Sponsorship
Not Available
RelocationAllowed
Skills
Python
LLMs
Agentic AI
• LangChain • Langraph • LlamaIndex • Crew-AI • NumPy • Pandas • Matplotlib • Seabor
About the job
About the Role
We're seeking an experienced AI Engineer to design and deploy production-grade LLM applications and AI agents. You'll transform complex AI solutions from prototype through production, building scalable agentic workflows and intelligent systems that drive real-world impact.
Key Responsibilities
- Design and implement intelligent agents and workflows using frameworks like LangChain, LangGraph, or similar technologies
- Engineer sophisticated multi-step workflows incorporating tool calling, structured outputs, state management, memory systems, and dynamic loops
- Develop robust RAG systems including embeddings, vector search, retrieval optimization, and intelligent reranking
- Build comprehensive evaluation frameworks to assess accuracy, reliability, latency, and cost efficiency
- Establish production-ready observability, guardrails, logging, and error handling mechanisms
- Own the end-to-end journey of AI solutions from initial prototype to full-scale production deployment
Required Qualifications
- Python proficiency is essential
- Strong software engineering fundamentals: OOP principles, asynchronous programming, REST APIs, and robust error handling
- Proven hands-on experience with LLM and AI agent development
- Expertise in prompt engineering, loop design, and agentic graph architecture
- Advanced knowledge of tool calling, function calling, structured outputs, and context/memory management
- Deep understanding of RAG systems, embeddings, vector search, and retrieval techniques
- Production experience with LangChain, LangGraph, LlamaIndex, or equivalent frameworks
- Proficiency with REST APIs and backend service architecture
- Experience with vector databases (pgvector, Pinecone, Weaviate, Qdrant, or similar)
- Hands-on Docker and cloud infrastructure expertise
Preferred Qualifications
- Experience with LangSmith or equivalent observability platforms
- Knowledge of Model Context Protocol (MCP)
- Expertise in agent evaluation, benchmarking, and automated testing
- Familiarity with event-driven and asynchronous architectural patterns
- Experience 3–6 years of software engineering experience with hands-on LLM and Generative AI development.
About the company
- B2C
- B2B
- Growth StageExpanding market presence
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