AI Data Integration Engineer, RCM Systems
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Role details
Tech stack
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Job description
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Lead the architectural design of integration strategies and solutions that connect various internal and external systems to our central platform.
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AI-accelerated mapping & data quality: use AI/LLM tools to speed up schema mapping, field reconciliation, and anomaly detection.
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Data modeling & mapping: build data models and source-to-target mapping specs from Practice Management (PM) systems to our AI platform.
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Pipelines: design and build ETL processes and REST/SOAP APIs that move data into Resolv Core, per the architect’s design.
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Data wrangling: cleanse, structure, and enrich source data into Resolv Core’s target format.
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Pave the path where there’s no existing playbook; several of these legacy systems are poorly documented.
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Reliability: monitor, troubleshoot, and resolve integration issues in production.
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Collaboration: work closely with our AI Architect, product, engineering, operations, and leadership.
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Documentation: maintain data models, mapping specs, and pipeline configurations.
Requirements
Experience: A minimum of 5 years in data/system integration or ETL engineering, building production integrations against complex legacy systems.
Healthcare/RCM experience preferred; direct exposure to one or more Practice Managenent (PM) systems.
Technical (AI first):
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Hands-on experience using AI/LLM APIs (e.g., OpenAI, Azure OpenAI) for schema inference, field-mapping/entity resolution, or automated data-quality checks - with concrete examples.
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Judgment on the best approach to using AI tooling.
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Production-grade proficiency with SQL and experience with relational databases.
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Familiarity with Python and JavaScript (or similar scripting language).
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Design, build, and maintain ETL processes, data pipelines, and APIs to facilitate the seamless flow of data between different applications and data sources.
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REST and SOAP API development.
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Comfortable with JSON, XML, CSV, flat-file, and EDI formats.
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Data modeling and mapping-spec authorship.
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Understanding of HIPAA and PHI security practices.
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Cloud integration platforms; Azure stack (Fabric, Data Lake, SQL, Data Factory) a plus.
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HL7/FHIR knowledge.
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