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RhythmX AI

Technical Product Manager – AI Platform & Interoperability

Reposted 13 Days Ago
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In-Office
Bengaluru, Bengaluru Urban, Karnataka, IND
Senior level
In-Office
Bengaluru, Bengaluru Urban, Karnataka, IND
Senior level
Lead development of an AI-first healthcare data platform: design scalable ingestion (HL7, FHIR), canonical clinical data models, temporal processing and orchestration, platform APIs, and AI-ready pipelines. Translate vision into backlog, prioritize work, partner with engineering and ML teams, and drive delivery and platform reliability at scale.
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Technical Product Manager – AI Platform & Interoperability

About GW RhythmX

Our Vision: Forever change medicine by turning intelligence into impact at every point of care.

GW RhythmX uses AI to help 150+ health systems deliver the right care, at the right time, through the right clinician — reducing burden while improving outcomes. Our solutions reach 85M+ patients, including 8M U.S. military veterans, and are recognized by KLAS Research, Fierce Healthcare, and AVIA Marketplace.

As a Symphony AI portfolio company, we combine startup agility with enterprise-scale infrastructure, including:

  • Longitudinal data on 300M patients
  • 4.4B annual claims
  • A global network of 1.8M healthcare professionals

The Role

We are building a scalable, AI-first healthcare data platform that transforms raw clinical data into actionable intelligence.

As a Technical Product Manager, you will drive the development of core platform capabilities spanning:

  • Healthcare data ingestion and interoperability
  • Data normalization and canonical modeling
  • Temporal data processing and workflow orchestration
  • AI-ready data pipelines powering recommendations and patient insights

This is a highly technical, execution-focused role requiring deep collaboration with architects and engineering teams to design and deliver high-scale, reliable platform systems.

What You’ll Own

  1. Healthcare Data Ingestion & Interoperability
  • Define and deliver scalable ingestion pipelines for HL7 v2, FHIR R4, and other clinical data formats
  • Drive integration with interoperability platforms (e.g., Redox, Mirth)
  • Ensure high data quality, schema validation, and fault-tolerant ingestion
  1. Data Normalization & Canonical Data Model
  • Own the design and evolution of a canonical clinical data model across domains (encounters, medications, labs, notes, etc.)
  • Define mapping frameworks for terminologies and coding systems (ICD, SNOMED, LOINC, RxNorm)
  • Ensure consistent representation of structured and semi-structured clinical data
  1. Data Processing & Workflow Orchestration
  • Define systems for event-driven and batch data processing pipelines
  • Drive temporal alignment of clinical events to support longitudinal patient views
  • Partner with engineering to implement scalable workflows using orchestration frameworks (e.g., Temporal)
  1. Platform APIs & Data Services
  • Define APIs for:
    • Data ingestion and transformation
    • Access to normalized patient data
    • Downstream consumption for analytics and AI use cases
  • Ensure high performance, scalability, and reliability of platform services
  1. AI-Ready Data Foundation
  • Enable data pipelines that support:
    • Clinical decision support
    • Patient summaries
    • Recommendation systems
  • Collaborate with AI/ML teams to ensure data is structured, contextualized, and usable for model development
  1. Execution, Roadmap & Delivery
  • Translate platform vision into clear product backlog (epics, user stories, acceptance criteria)
  • Prioritize and sequence work across ingestion, processing, and platform services
  • Drive execution with engineering teams from 0 → 1 → scale
  • Track success via platform reliability, performance, and downstream impact

Examples of Problem Spaces You’ll Tackle

  • Designing a unified clinical data model across fragmented healthcare data sources
  • Building high-throughput ingestion systems for real-time and batch clinical data
  • Creating temporal patient timelines from multi-source healthcare events
  • Enabling AI-driven insights through clean, normalized, and structured datasets
  • Solving data consistency, mapping, and interoperability challenges at scale

Required Experience

Technical Product Management (Must-Have)

  • 5–8+ years of product management experience in a technical domain
  • Strong experience building platforms, APIs, or data infrastructure products
  • Ability to work deeply with engineers on architecture, system design, and trade-offs
  • Proven track record of delivering scalable systems from concept to production

Healthcare & Interoperability (Strongly Preferred)

  • Experience with HL7 v2, FHIR R4, and healthcare data exchange standards
  • Familiarity with interoperability engines (e.g., Redox, Mirth, Rhapsody)
  • Understanding of clinical data domains and workflows

Data & Platform Expertise

  • Strong understanding of:
    • Data modeling and schema design
    • ETL / ELT pipelines
    • Batch and streaming architectures
  • Experience working with PostgreSQL or similar relational databases

Preferred Technical Stack Experience

  • Workflow orchestration frameworks (e.g., Temporal)
  • Graph databases (e.g., Neo4j, Amazon Neptune)
  • Cloud platforms (Azure preferred, AWS acceptable)
  • Distributed systems and event-driven architectures

AI / ML (Preferred)

  • Exposure to AI/ML or LLM-based systems
  • Understanding of:
    • Structured + unstructured data pipelines
    • Retrieval-augmented generation (RAG)
    • Clinical summarization or recommendation systems

Builder Mindset (Non-Negotiable)

  • AI-first, AI-fast approach to product development
  • Strong ownership and bias for execution
  • Comfortable operating in ambiguity and solving complex problems
  • Deep curiosity and willingness to engage at technical depth
  • Outcome-driven mindset — focused on impact, not output

What Success Looks Like

  • A scalable platform that reliably ingests and processes healthcare data at scale
  • Well-defined canonical data model enabling consistent downstream usage
  • Efficient data pipelines powering AI-driven insights and applications
  • Strong collaboration between product, engineering, and data teams
  • Faster delivery of new platform capabilities and AI use cases

This Role Is Not For You If

  • You prefer high-level strategy without technical depth
  • You are not comfortable working closely with engineering teams
  • You need rigid processes and detailed instructions
  • You are not excited about building AI-driven platforms

Why Join Us

You’ll be building the core infrastructure that powers AI in healthcare, enabling:

  • Scalable data platforms
  • Real-time clinical intelligence
  • Next-generation AI applications

This is a high-impact role at the intersection of healthcare, data, and AI.

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