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Solution Partners, Inc.
Remote or Hybrid in Chicago, Illinois • 28d ago
Easy Apply
Full-time
160000 - 185000

Marsh & McLennan Companies
Remote or White Plains, New York • Today
Full-time
USD 115,800.00 - 202,700.00 per year

Empower Annuity Insurance Company of America
Remote • Today
Full-time
USD 114,000.00 - 165,300.00 per year



Role: Enterprise Data Solution Architect
Location: Remote
Role Overview:
The Data Solution Architect (DSA) is responsible for reviewing and assessing existing data architecture and platform components, as well as designing, implementing, and managing robust data solutions. Working in a collaborative team environment, the DSA will assess requirements, define technical data strategies, and deliver effective solutions.
The ideal candidate must have a clear vision for proper data architecture and system design to help drive strategies around improving data ecosystems. Additionally, the DSA should possess a strong ability to explore new tools and successfully pilot Proof of Concepts (POC) and Proof of Values (POV) for innovative new solutions.
Key Responsibilities
Architecture Strategy & Roadmap: Review and assess existing data architecture and platform components. Define potential future data architecture roadmaps that align with business objectives, data integrity, availability, and security.
Technology Evaluation & Cost Optimization: Evaluate current tools, services, and technologies across the data stack. Propose go-forward strategies that align with future needs and optimize costs.
Data Management Frameworks: Design and establish data management frameworks encompassing data ingestion, storage, processing, and retrieval processes to support both operational and analytical needs.
Integration Patterns: Design and establish data integration patterns, including third-party SaaS integrations, covering batch, near real-time, and real-time processing needs.
Tool Selection: Evaluate, select, and advocate for appropriate (and emerging) technologies and tools that directly meet business needs.
Stakeholder Collaboration: Work closely with stakeholders across the organization-including external teams, product managers, and developers-to enable and promote a collaborative data culture.
Requirements Scoping: Discover, analyze, and scope data requirements. Create high-level process models to represent operations for the area under analysis.
Research & Development: Proactively research and share emerging technologies, determining the right solution fitment for the business.
Solution Documentation: Arrive at clear solutions by developing data flow diagrams, process diagrams, use case models, and related technical documentation.
Mentorship: Guide and mentor junior Architects and Data Engineers.
Hands-on Data Modeling: Perform hands-on data modeling for Operational Data Store (ODS) and Data Warehouse applications.
Healthcare Interoperability: Execute mapping from HL7 to Target Data Models, and Target Data Models to FHIR.
Extracts & Framework Design: Develop extensive extract strategies and design reusable data frameworks.
Education
Bachelors or Masters in Information Technology, Computer Science or relevant field.
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