Worth AI

Worth AI

Website

Data Engineers (Principal and Senior roles)

Company

Worth AI

Role

Data Engineers (Principal and Senior roles)

Job type

Full-time

Posted

1 month ago

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Salary

Not disclosed by employer

Benefits

🏥Health Insurance🏖️Paid Time Off🦷Dental Coverage

Job description

Worth AI, a leader in the computer software industry, is looking for a talented and experienced Principal Data 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.

Worth is looking for a Senior and Principal level Data Engineers to own the company-wide data architecture and platform. Design and scale reliable batch/streaming pipelines, institute data quality and governance, and enable analytics/ML with secure, cost-efficient systems. Partner with engineering, product, analytics, and security to turn business needs into durable data products.

Responsibilities

What you will do

  • Architecture & Strategy
  • Define end-to-end data architecture (lake/lakehouse/warehouse, batch/streaming, CDC, metadata).
  • Set standards for schemas, contracts, orchestration, storage layers, and semantic/metrics models.
  • Publish roadmaps, ADRs/RFCs, and “north star” target states; guide build vs. buy decisions.

Platform & Pipelines

  • Design and build scalable, observable ELT/ETL and event pipelines.
  • Establish ingestion patterns (CDC, file, API, message bus) and schema-evolution policies.
  • Provide self-service tooling for analysts/scientists (dbt, notebooks, catalogs, feature stores).
  • Ensure workflow reliability (idempotency, retries, backfills, SLAs).

Data Quality & Governance

  • Define dataset SLAs/SLOs, freshness, lineage, and data certification tiers.
  • Enforce contracts and validation tests; deploy anomaly detection and incident runbooks.
  • Partner with governance on cataloging, PII handling, retention, and access policies.

Reliability, Performance & Cost

  • Lead capacity planning, partitioning/clustering, and query optimization.
  • Introduce SRE-style practices for data (error budgets, postmortems).
  • Drive FinOps for storage/compute; monitor and reduce cost per TB/query/job.

Security & Compliance

  • Implement encryption, tokenization, and row/column-level security; manage secrets and audits.
  • Align with SOC 2 and privacy regulations (e.g., GDPR/CCPA; HIPAA if applicable).

ML & Analytics Enablement

  • Deliver versioned, documented datasets/features for BI and ML.
  • Operationalize training/serving data flows, drift signals, and feature-store governance.
  • Build and maintain the semantic layer and metrics consistency for experimentation/BI.

Leadership & Collaboration

  • Provide technical leadership across squads; mentor senior/staff engineers.
  • Run design reviews and drive consensus on complex trade-offs.
  • Translate business goals into data products with product/analytics leaders.

Requirements

  • 10+ years in data engineering (including 3+ years as staff/principal or equivalent scope).
  • Proven leadership of company-wide data architecture and platform initiatives.
  • Deep experience with at least one cloud (AWS) and a modern warehouse or lakehouse (e.g., Snowflake, Redshift, Databricks).
  • Strong SQL and one programming language (Python or Scala/Java).
  • Orchestration (Airflow/Dagster/Prefect), transformations (dbt or equivalent), and streaming (Kafka/Kinesis/PubSub).
  • Data modeling (3NF, star, data vault) and semantic/metrics layers.
  • Data quality testing, lineage, and observability in production environments.
  • Security best practices: RBAC/ABAC, encryption, key management, auditability.
  • All Remote Hires - will be required to travel to Orlando, Florida at least twice per year for Town Halls and team collaboration in addition to orientation in Orlando, Florida.

Nice to Have

  • Feature stores and ML data ops; experimentation frameworks.
  • Cost optimization at scale; multi-tenant architectures.
  • Governance tools (DataHub/Collibra/Alation), OpenLineage, and testing frameworks (Great Expectations/Deequ).
  • Compliance exposure (SOC 2, GDPR/CCPA; HIPAA/PCI where relevant).
  • Model features sourced from complex 3rd-party data (KYB/KYC, credit bureaus, fraud detection APIs)

Benefits

  • Health Care Plan (Medical, Dental & Vision)
  • Retirement Plan (401k, IRA)
  • Life Insurance
  • Unlimited Paid Time Off
  • 9 paid Holidays
  • Family Leave
  • Work From Home
  • Free Food & Snacks (Access to Industrious Co-working Membership!)
  • Wellness Resources
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