Data Platform Engineer

🏢 Worth AI · all Worth AI jobs
📍 United States
📅 Posted 2026-07-05 · via Himalayas
🏷 Software-Engineer,Data-Platform-Engineer,Data-Engineering,DevOps,Data-Platform,Data-Architecture
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Worth AI , a leader in the computer software industry, is looking for a talented and experienced Data Platform Engineer to join their innovative team. At Worth AI , we are on a mission to revolutionize decision-making with the power of artificial intelligence while fostering an environment of collaboration, and adaptability, aiming to make a meaningful impact in the tech landscape.. Our team values include extreme ownership, one team and creating reaving fans both for our employees and customers.

As a Data Platform Engineer, you will design, build, and operate the core data services that power our products and analytics. You’ll own end-to-end data pipelines and API services that ingest, process, and expose high-quality data to internal customers (data science, analytics, product, and other engineering teams) and external partners.

You’ll be part of a small, high-impact team that treats the data platform as a product with strong SLAs, and reliable self-service for internal and external users.
Responsibilities
What you’ll do:

- Architect and implement entity resolution logic to de-duplicate and link disparate data points into unified "Golden Records" for businesses and individuals

- Design and maintain a high-performance global business knowledge graph and ontology to map complex ownership chains, UBOs, and hidden risk relationships across international borders

- Implement a hybrid storage strategy that bridges graph databases for relationship mapping with document and search stores for rich metadata and adverse media content

- Optimize the platform for real-time risk assessment, ensuring the ability to traverse multiple levels of ownership in milliseconds to support automated "Go/No-Go" onboarding decisions

- Design and build scalable data services and APIs for ingesting, transforming, and serving data across the company

- Develop and maintain batch and streaming data pipelines using modern data processing frameworks and AWS cloud-native tooling

- Own the reliability, performance, and API first data platform, including monitoring, alerting, and on-call where appropriate

- Implement best practices for data modeling, quality, lineage, and governance to ensure trustworthy, well-documented datasets

- Work closely with data scientists, analysts, and application engineers to understand their needs and translate them into robust platform capabilities

- Drive automation and standardization through CI/CD, model as a service, and reproducible environments

- Help define and evolve the architecture of our data platform as a true internal service with clear contracts, SLAs, and versioned APIs

Requirements

- Expertise in Graph Ecosystems: Hands-on experience with Graph databases (e.g., Neo4j, AWS Neptune, or TigerGraph) and query languages like Cypher or Gremlin

- Identity & Linkage Mastery: Proven experience with Entity Resolution or Record Linkage (e.g., using tools like Senzing, Quantexa, or custom probabilistic matching models)

- Schema Design: Ability to design flexible ontologies that handle evolving regulatory data (e.g., changing PEP definitions or Sanction list formats)

- API Performance for Graphs: Experience building GraphQL or REST APIs specifically optimized for graph traversals and deep-tree lookups

- Experience building centralized data platforms or “data-as-a-service” offerings at scale (e.g., at a large tech or cloud-native company)

- Strong software engineering skills in at least one language commonly used for data and services (e.g., Python, Java, Go, Rust)

- Hands-on experience building data pipelines and ETL/ELT workflows on a major cloud provider (AWS preferred)

- Experience with modern data stack tools such as Spark/Flink, Kafka/Kinesis, Airflow/managed schedulers, and data warehouses (e.g., Snowflake, Redshift, BigQuery, Databricks)

- Familiarity with DevOps practices: CI/CD, containerization (Docker), orchestration (Kubernetes), and infrastructure-as-code (Terraform)

- Strong focus on obs

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