AI/ML Engineer

Posted Yesterday
Doddaballapura, Bangalore Rural, Karnataka, IND
In-Office
Entry level
Information Technology • Professional Services • Consulting • Financial Services
The Role
Develop and productionize multi-agent LLM systems for maternal healthcare. Build TypeScript and Node.js orchestration workflows, train Python machine learning pipelines for clinical pattern recognition, integrate Snowflake and Snowpark data systems, manage intelligent agent lifecycles, and establish evaluation frameworks ensuring clinical safety, accuracy, privacy, and reduced hallucinations when processing HIPAA-protected data.
Summary Generated by Built In

Role Overview: We are seeking a highly skilled AI/ML Engineer to lead the development, scaling, and productionization of our advanced AI Agent ecosystem. In this role, you will be responsible for orchestrating multi-agent LLM systems and developing machine learning models to analyze complex clinical data for our maternal-care platform.

You will directly oversee and mature three critical intelligent agents: Agent 1 production billing reconciliation and payer eligibility), Agent 2 navigation automation), and Agent 3 clinical pattern recognition executing against an 11K+ escalation corpus).

Key Responsibilities:

  • Agent Orchestration: Design, build, and optimize multi-agent workflows using TypeScript/Node.js to call enterprise LLM APIs.
  • ML Pattern Recognition: Develop and train specialized Python-based machine learning pipelines to ingest and detect anomalies, trends, and risk indicators within an 11K+ clinical escalation corpus.
  • Agent Lifecycle Management: Maintain and iteratively improve Agent 1 (cross-reconciliation across PCM/BHI/RPM/CCM), advance Agent 2 through its deployment phases, and mature Agent 3 from build to production readiness.
  • Data Pipeline Integration: Work closely with the data engineering team to process structured and unstructured data via Snowflake (Snowpark / Python APIs) and ensure data compliance with HIPAA standards for handling Protected Health Information (PHI).
  • System Performance & Evaluation: Establish strict evaluation frameworks (evals) for LLM outputs to guarantee clinical safety, accuracy, and mitigation of hallucinations in triage recommendation queues.


Requirements

Required Technical Skills & Qualifications:

  • Languages: Advanced proficiency in Python (for ML data science workloads) and TypeScript / Node.js (for backend orchestration and API integration).
  • AI/LLM Frameworks: Strong experience with LLM orchestration frameworks (e.g., LangChain, LlamaIndex, or LangGraph) and commercial/open-source LLM APIs.
  • Machine Learning NLP: Deep understanding of Natural Language Processing (NLP), text embedding generation, vector databases, and pattern-recognition techniques applied to unstructured text datasets.
  • Data Stack: Hands-on experience with Snowflake and Snowpark using Python APIs.
  • Healthcare Domain (Highly Preferred): Familiarity with US healthcare compliance, HIPAA data privacy requirements, and navigating clinical nomenclature.


Skills Required

  • Advanced proficiency in Python for machine learning and data science workloads
  • Advanced proficiency in TypeScript and Node.js for backend orchestration and API integration
  • Experience with LLM orchestration frameworks such as LangChain, LlamaIndex, or LangGraph
  • Experience with commercial or open-source LLM APIs
  • Deep understanding of Natural Language Processing, text embeddings, vector databases, and pattern recognition for unstructured text
  • Hands-on experience with Snowflake and Snowpark using Python APIs
  • Familiarity with U.S. healthcare compliance and HIPAA data privacy requirements
  • Familiarity with clinical nomenclature
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The Company
4 Employees
Year Founded: 2025

What We Do

Navinyaa Solutions is a multidisciplinary business-services provider offering engineering design, IT solutions, finance and accounting, business-process outsourcing, and consulting. Its services span software development, cloud services, data analytics, customer support, HR and finance operations, and guidance on processes, projects, and product risks. The company combines technology and corporate support to streamline global operations, reduce overhead, and accelerate clients’ time-to-market.

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