New York Blood Center Enterprises

Senior Data Engineer

Job Locations US-NY-Rye
Job ID
2026-8436
Category
Information Technology
Minimum Rate
USD $127,000.00/Yr.
Maximum Rate
USD $137,000.00/Yr.
Work Location Type
Physical

Responsibilities

As a Senior Data Engineer on DAPI's Tetris team, you will own the design and delivery of complex data engineering solutions that power NYBCe's enterprise analytics, AI, and reporting capabilities. Reporting to the Lead Data Engineer, you will drive technical decisions, set engineering standards, and ensure the reliability and scalability of DAPI's data platform across 49+ integrated enterprise source systems.

 

This role demands deep technical mastery in SQL, Python, and Azure cloud data engineering, combined with a product orientation—understanding how the data assets you build translate into decisions, reports, and AI outputs for the business. You will mentor Data Engineers, contribute to architectural direction, and serve as a technical anchor for delivery across the Tetris team's sprint cycles.

 

Advanced Pipeline Development & Ownership

  • Architect, build, and own complex data pipelines for high-volume, high criticality workstreams across NYBCe's enterprise data platform.
  • Lead the design and implementation of ELT/ETL frameworks using SQL, Python, Azure Data Factory, Databricks, and Azure Synapse Analytics.
  • Establish pipeline reliability standards—monitoring, alerting, error handling, and recovery protocols—and ensure adherence across the team.

Data Architecture & Platform Evolution

  • Drive the design of scalable data models supporting dimensional warehousing, data lake architectures on Azure.
  • Contribute to architectural decisions on data storage, partitioning, compute optimization, and consumption layer design.
  • Lead migrations from legacy data solutions to modern cloud-native platforms, managing risk and business continuity throughout.

AI & Analytics Enablement

  • Design and deliver feature pipelines and data preparation frameworks that support machine learning model development and deployment.
  • Partner with Data Scientists to translate model requirements into production-grade data assets and feature stores.
  • Collaborate with Analytics Engineers to ensure data models are optimized for analytical consumption and reporting performance.

Data Quality & Governance Leadership

  • Define and implement data quality frameworks—validation rules, SLAs, anomaly detection, and automated testing for pipeline outputs.
  • Lead data governance initiatives including metadata management, lineage tracking, data cataloging (Microsoft Purview), and access control.
  • Ensure platform compliance with HIPAA, NYBCe data policies, and applicable regulatory requirements.

Mentorship & Technical Leadership

  • Mentor Data Engineers—providing code reviews, technical guidance, and architectural feedback that elevates team capability.
  • Contribute to DAPI's engineering standards, reusable frameworks, and technical documentation.
  • Participate in Agile ceremonies and model strong engineering discipline—clear DevOps hygiene, sprint commitment, and delivery accountability.

Qualifications

 

Education:

  • Bachelor’s degree in computer science, Data Science, Information Technology, or a related quantitative field.

Experience:

  • 6+ years of progressive experience in data engineering with demonstrated ownership of complex, production-grade data platforms.
  • Expert-level SQL (query optimization, indexing strategy, execution plans) and Python (PySpark, pipeline frameworks, testing).
  • Deep hands-on experience with Azure data services: Azure Data Factory, Azure Databricks, Azure Synapse Analytics, Azure Data Lake Storage.
  • Proven experience designing dimensional data models and data lake architecture at enterprise scale.
  • Experience building data pipelines that directly support machine learning feature engineering and model serving.
  • Strong background in data quality engineering—automated validation, SLA enforcement, and lineage tracking.
  • Experience with relational databases (SQL Server, Oracle) and migration from legacy to cloud-native platforms.

 

Certifications & Licenses:

No certifications are required. The following are considered favorable:

  • Microsoft Certified: Azure Data Engineer Associate
  • Databricks Certified Associate Developer for Apache Spark

Knowledge:

  • Advanced SQL and Python for enterprise-scale data engineering—optimization, testing, and framework design.
  • Azure data platform architecture in depth—ADF, Databricks, Synapse, ADLS, and their integration patterns.
  • Modern data platform paradigms—data lake, medallion architecture, data mesh concepts, and consumption layer design.
  • Machine learning pipeline requirements—feature engineering, training data preparation, and model data dependencies.
  • Data governance frameworks—metadata management, lineage, cataloging, access control, and regulatory compliance (HIPAA).
  • Agile engineering practices—sprint delivery, DevOps hygiene, CI/CD for data pipelines, and technical documentation standards.

Skills:

  • Cultural competency and the ability to communicate effectively in a culturally sensitive manner with both individuals and groups from diverse backgrounds.
  • Architect and deliver complex, production-grade data pipelines that meet enterprise reliability and performance standards.
  • Design scalable data models and platform structures that serve analytics, reporting, and AI consumption patterns simultaneously.
  • Lead data quality engineering—automated testing, validation frameworks, SLA monitoring, and incident response.
  • Mentor and elevate Data Engineers through code review, architectural feedback, and knowledge transfer.
  • Translate product and analytical requirements into sound engineering designs and delivery plans.

Abilities:

  • Communicate complex data concepts clearly to both technical and non-technical stakeholders.
  • Work independently and manage competing priorities in a lean, fast-paced team environment.
  • Embrace accountability and take ownership of deliverables end-to-end.
  • Incorporate feedback constructively and seek continuous improvement.

Any combination of education, training, and experience equivalent to the requirements above that has supplied the necessary knowledge, skills, and experience to perform the essential functions of the job.

 

For applicants who will perform this position in Westchester County, the proposed annual salary is $127,000.00 to $137,000.00 per year.  For applicants who will perform this position outside of New York City or Westchester County, salary will reflect local market rates and be commensurate with the applicant’s skills, job-related knowledge, and experience.

 

Unless otherwise specified, all posted opportunities are located in the New York or Greater Tri-State office locations.

Overview

Founded in 1964, New York Blood Center (NYBC) has served the tri-state area for more than 60 years, delivering 500,000 lifesaving blood products annually to 150+ hospitals, EMS and healthcare partners. NYBC is part of New York Blood Center Enterprises (NYBCe), which spans 17+ states and delivers one million blood products to 400+ U.S. hospitals annually. NYBCe additionally delivers cellular therapies, specialty pharmacy, and medical services to 200+ research, academic and biopharmaceutical organizations. NYBCe’s Lindsley F. Kimball Research Institute is a leader in hematology and transfusion medicine research, dedicated to the study, prevention, treatment and cure of bloodborne and blood-related diseases. NYBC serves as a vital community lifeline dedicated to helping patients and advancing global public health. To learn more, visit nybc.org. Connect with us on Facebook, X, Instagram, and LinkedIn.

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