Senior AI ML Engineer

SourcingXPress

Bengaluru

On-site

INR 3,000,000 - 5,000,000

Full time

7 days ago
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Job summary

RapidClaims is hiring a Senior AI/ML Engineer to own end-to-end applied LLM, retrieval, and evaluation layers of our healthcare AI platform. Build scalable, auditable pipelines for coding, edits, denials, and payer-rule reasoning in a regulated healthcare setting.

You will deploy and operate self-hosted LLMs, work with embedding-based retrieval and knowledge graphs, and design deterministic structured outputs with JSON.

Qualifications

  • 5+ years in ML/AI engineering, including production LLM systems.
  • Hands-on experience deploying self-hosted LLMs and retrieval pipelines.
  • Strong Python + PyTorch + Hugging Face with monitoring and eval infra.

Responsibilities

  • Own end-to-end LLM stack: ingestion, retrieval, and evaluation.
  • Design prompts, constraints, and JSON outputs for clinical coding tasks.
  • Monitor drift, latency, and accuracy in production systems.

Skills

ML engineering
LLM production
Python
PyTorch
Hugging Face
Self-hosted LLMs
Retrieval systems
Knowledge graphs
Evaluation infra
Monitoring

Tools

Neo4j
ArangoDB
Vector DBs

Job description

Job Description:


Company: RapidClaims


LinkedIn: Visit LinkedIn


Business Type: Startup


Company Type: Product


Business Model: B2B


Funding Stage: Series A


Industry: Healthcare


Salary Range: ₹ 30-50 Lacs PA


RapidClaims is a leader in AI-driven revenue cycle management, transforming how US healthcare providers run mid- and end-revenue cycle operations — from medical coding and charge capture through claim scrubbing, denials management, appeals, and payment posting. The company has raised $11 million in total funding from top investors, including Accel and Together Fund. Join us as we scale a cloud-native platform that runs self-hosted, fine-tuned Large Language Models, knowledge graphs, and embedding-based retrieval over millions of clinical notes, claims, and payer-policy documents every month. You’ll engineer autonomous pipelines that parse clinical records and translate into codes, provide documentation improvement parameters, and even solve for denials with autonomous calling if needed; Tackle the deep-domain challenges that make clinical and RCM AI one of the most rewarding problems in tech.


Senior AI/ML Engineer- Job Overview

We are hiring a Senior AI/ML Engineer to own the end-to-end applied LLM, retrieval, and evaluation layer of our healthcare AI platform. You will build production systems that automate mid- and end-revenue cycle workflows for US healthcare spanning coding, claim edits, denials triage, appeal generation, and payer-rule reasoning. This is a production engineering role (not research) focused on building scalable, auditable, and cost-efficient LLM systems in a regulated healthcare environment.


What You’ll Own


  • Self-Hosted LLM Infrastructure

  • Deploy, fine-tune, and operate open-source models (Llama, Qwen, MedGemma, and successors) as our primary inference stack

  • Work with vLLM / SGLang / TensorRT-LLM for serving at scale, with disciplined attention to throughput, tail latency, batching, KV-cache, and GPU economics

  • Own fine-tuning workflows end-to-end (SFT, LoRA, QLoRA, DPO) on clinical notes, claims, and payer-rule data

  • Optimize GPU usage, latency, batching, and cost; make build-vs-buy and hosted-vs-self-hosted trade-offs explicit and measured

  • Knowledge Graphs & Embedding-Based Retrieval

  • Design and maintain the knowledge graph encoding ICD-10-CM, CPT, HCPCS, modifiers, HCC, NCCI edits, LCD/NCD policies, and payer-specific rules — and the relationships between them

  • Build embedding-based retrieval over clinical notes, historical claims, denial reasons, and payer-policy corpora — including chunking, embedding model selection, hybrid search, and re-ranking

  • Combine graph traversal and dense retrieval so every coded line, scrubbed edit, and appeal response is grounded in auditable evidence

  • Own ingestion, versioning, and quality of underlying knowledge sources (CMS, AHA, AMA, NCCI, payer bulletins)

  • Evaluation & Monitoring

  • Build continuous evaluation pipelines that gate every model, prompt, retrieval, and graph change before production

  • Run offline eval suites grounded in coder- and biller-validated labels; use LLM-as-judge where appropriate, calibrated against human ground truth

  • Monitor drift, hallucinations, regressions, and output quality in production; operate shadow-mode rollouts and per-cohort accuracy tracking (specialty, payer, chart type)

  • Track business metrics: chart-level and opportunity-level coding accuracy, denial rate impact, clean-claim rate, cost per chart, and end-to-end latency

  • LLM Systems & Prompt Engineering

  • Design prompts and context pipelines for coding (CPT, ICD, HCC, E/M), claim edits, denial classification, and appeal drafting

  • Implement structured outputs (JSON, function calling, constrained decoding) on top of the self-hosted stack

  • Apply RAG over medical coding standards (CMS, ICD-10, AHA, NCCI) and payer policies, grounded in the knowledge graph and embedding stores

  • Treat prompts as a thin, well-versioned, well-evaluated layer — never the load-bearing piece

  • Agentic Workflows & Tooling — MCP

  • Build MCP servers for internal tools: code lookup, NCCI / rule checks, payer logic, eligibility, denial classification

  • Design multi-step agent workflows with audit trails and human-in-the-loop checkpoints for coder, biller, and AR-analyst review

  • Define deterministic vs. LLM-based tool boundaries for reliability — reliability comes from knowing which is which


What We’re Looking For

Must-Have


  • 5+ years in ML/AI engineering, including 6+ months in production LLM systems

  • Hands-on experience deploying and operating self-hosted LLMs (vLLM, SGLang, TensorRT-LLM, or equivalent)

  • Strong experience designing embedding-based retrieval and/or knowledge graphs for grounded LLM applications

  • Demonstrated ownership of evaluation infrastructure — offline benchmarks, online monitoring, drift and regression detection

  • Strong Python + PyTorch + Hugging Face experience

  • Production experience with monitoring, incidents, and system ownership


Strongly Preferred


  • Fine-tuning experience (SFT, LoRA, QLoRA, DPO) on domain-specific corpora

  • Experience with graph databases (Neo4j, ArangoDB, or equivalent) and graph-aware retrieval

  • Experience with vector databases and hybrid search (BM25 + dense, rerankers)

  • Familiarity with LLM observability tools (Langfuse, LangSmith, Arize, Braintrust, or in-house equivalents)

  • Exposure to healthcare, RCM, claims, or other regulated domains

  • Experience with MCP or similar tool-orchestration frameworks

  • Strong prompt-engineering and LLM-evaluation instincts


What We Offer


  • Work on high-impact healthcare AI systems used in real billing and RCM workflows

  • Ownership of production LLM, retrieval, and evaluation systems end-to-end

  • Solve real-world problems with real constraints (cost, latency, compliance, auditability)

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