Lead Data Warehouse Engineer - Artificial Intelligence-Ready Mount Sinai (AIR.MS)

Mount Sinai

New York (NY)

On-site

USD 140,000 - 190,000

Full time

14 days+
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Job summary

The Icahn School of Medicine at Mount Sinai seeks a Lead Data Warehouse Engineer to guide the ongoing integration of multi-modal clinical data into the AIR.MS warehouse. You will assess data integration state, plan metadata integration, and lead implementation with the AIR.MS platform teams.

The role requires 12–15 years of relevant experience, including 7 years designing and maintaining relational databases and data pipelines.

Qualifications

  • Bachelors degree in a technical discipline; Masters degree preferred.
  • 12-15 years preferred of related experience, including 7 years designing, developing, and maintaining relational databases, data pipelines, and dimensional/OLAP warehouses.

Responsibilities

  • Design databases and pipelines that balance functionality, performance, cost, and development time; evaluate technical options with the product manager.
  • Design, build, test, and maintain data pipelines that extract/capture data from source systems, transform and augment those data, and integrate it into a multi-modal data repository.
  • Lead design sessions, code walkthroughs, peer reviews, and produce technical documentation.
  • Mentor junior engineers in data warehousing, data engineering skills, and operational support.

Skills

SQL
Data warehousing
Dimensional modeling
Change data capture
Incremental loads
Data lineage
Source-to-target mappings
DevOps practices
Agile (Scrum/Kanban)
JIRA & Confluence
Git version control
Communication skills
Healthcare data knowledge
Hadoop/Spark/Kafka

Education

Bachelor's degree in a technical discipline
Master's degree preferred

Tools

SAP HANA
MySQL
Hadoop
Spark
Kafka

Job description

The Scientific Computing and Data team at the Icahn School of Medicine at Mount Sinai partners with scientists and clinicians to accelerate scientific discovery.The AI-Ready.MountSinai (AIR.MS)platformcontainspatientdata generated fromthe clinical careprocesses atthe MountSinaiHealthSystem.AIR·MS is a cloud-based,high-performanceSAP HANAdata platformwith electronic health record (EHR) data in an OMOP data format. It also contains metadata from and links to raw data sets in other modalities, such as radiology, genomics and pathology. Researchers can access the AIR.MS data throughdirectdatabaseaccess, AIagents, cohort query tools and the Minerva high-performance computer.AIR.MS ingests OHDSI’s Observational Medical Outcomes Partnership (OMOP)-formatted EHR data from the Mount Sinai Data Warehouse. AIR.MS is integrated with Minerva, ahigh-performance computerwith>21 petaflops of raw computational power and the raw radiology, genomics and pathology data sets. Anexpert team of 20+ PhD/MDcomputational scientists, biomedical informaticists and computerscientistspartner with researchers and clinicians toeffectively and efficientlyutilizethese resourcesfor translational science. Provide high-quality customer service to researchers, clinicians, and internal partners; maintain a science-driven, customer-focused approach.

The Lead Data Warehouse Engineer is a senior technical specialist responsible for leading the ongoing integration of multi-modal clinical data into the AIR.MS data warehouse. The Lead Data Warehouse Engineer will assess the state of data integration, identify opportunities for data integration based on researcher’s priorities, develop a plan to integrate metadata and data, and execute on the data integration. The incumbent will work collaboratively with other members of the AIR.MS data platform and Mount Sinai Data Warehouse teams to lead technical efforts for the integration of multi-modal data sets resulting in expanded AIR.MS functionality. The AIR.MS data warehouse is built on the SAP HANA technology stack and MSDW is built on MySQL.

  • Design databases and pipelines that balance functionality, performance, cost, and development time; evaluate technical options with the product manager.
  • Design, build, test, and maintain data pipelines that extract/capture data from source systems, transform and augment those data, and integrate it into a multi-modal data repository.
  • Serve as a team leader; contribute to project planning, work breakdown, dependency sequencing, and release management.
  • Develop and promote standards, conventions, design patterns, DevOps/SDLC best practices, and operational procedures for pipelines and warehouse maintenance.
  • Mentor junior engineers in data warehousing, data engineering skills, and operational support.
  • Design, build, and maintain data management processes, including loading flat files (csv, tsv, pipe-delimited, JSON).
  • Lead design sessions, code walkthroughs, peer reviews, and produce technical documentation.
  • Tune database objects, stored procedures, and pipelines to optimize performance and minimize compute and storage costs.
  • Monitor database and pipeline operations; lead troubleshooting and remediation of failures; provide occasional after-hours on-call support.
  • Collaborate with DBAs and system administrators on backups, performance tuning, statistics/index maintenance, and patching.
  • Provide high-quality customer service to researchers, clinicians, and internal partners; maintain a science-driven, customer-focused approach.
  • Ensure patient privacy and data security in compliance with IRB & cybersecurity policies, HIPAA, 42 CFR Part 2, NYS Article 27‑F, and other regulations.
  • Stay current with emerging technologies to improve capabilities, efficiency, quality, or cost.
  • Identify improvements in procedures, technology, compliance, and data privacy/security.
  • Periodically assist DBAs with user provisioning, backups, restorations, capacity planning, and performance monitoring.
  • Perform related duties as assigned.
  • Bachelors degree in a technical discipline; Masters degree preferred
  • 12-15 years preferred of related experience, including 7 years of experience designing, developing, and maintaining relational databases, data pipelines, and dimensional/OLAP warehouses.
Preferred:
  • Expert knowledge of data warehousing: 3NF & dimensional modeling (fact table types, SCDs), change data capture, incremental loads, data lineage, source-to-target mappings, pattern-based & parameter-driven development.
  • Experience working with healthcare data
  • Expert-level experience with data engineering technologies: SQL, indexing, stored procedures, UDFs, sequences, dynamic SQL, data transformation tools, job orchestration tools for data processing.
  • Experience with DevOps/SDLC best practices; Agile (Scrum, Kanban) with JIRA and Confluence; version control with git.
  • Strong communication and customer service skills for working with researchers, clinicians, administrators, and IT staff.
  • Excellent critical thinking, problem-solving, multitasking, and collaboration skills; ability to work independently in a fast-paced environment.
  • Preferred experience with healthcare data (EHR, billing/claims, cost accounting), Epic Clarity/Caboodle, data models (OMOP, i2b2, PCORnet).
  • Experience with database administration: configuration, performance tuning, partitioning, materialized views, permissions, backups & restorations.
  • Knowledge of Hadoop, Spark, Kafka and other big data technology stacks and streaming tools.
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