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Citizens

Principal Data Engineer - Neo4J

Posted Yesterday
In-Office or Remote
Hiring Remotely in United States
Senior level
In-Office or Remote
Hiring Remotely in United States
Senior level
Lead graph data engineering to design, implement, and scale Neo4j-based graph platforms. Build graph models, ingestion pipelines (batch and streaming), integrate graphs with analytics/ML, establish governance, and enable graph-driven business use cases like fraud detection and Customer 360.
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Principal Data Engineer – Graph Data Engineering Neo4j

Role Summary

As Principal Data Engineer, you will be chartered with developing functional systems to realize key business objectives and goals, with a specialization in graph data engineering and connected data architecture. You will help lead a team of data engineers as you create interfaces, graph models, and data platforms that facilitate the flow, linkage, and contextualization of information across Citizens’ business operations.

In this role, you will establish and scale graph-based solutions using Neo4j, enabling relationship-driven insights, network analytics, and advanced data discovery across domains such as fraud detection, risk analysis, and customer intelligence.

Specialized Responsibilities

  • Serve as a key contributor in designing and delivering graph data solutions, partnering with stakeholders to translate business needs into connected data models and graph architectures
  • Engineer and maintain graph database Neo4j, alongside relational and non-relational systems to support hybrid data environments
  • Develop and operationalize relationship-based data models, including nodes, edges, and properties aligned to enterprise business domains
  • Design and implement knowledge graphs and connected data platforms that unify disparate data sources and expose relationships across systems
  • Build and optimize graph ingestion pipelines for batch and streaming data sources, ensuring data freshness and integrity
  • Develop mechanisms and architectures that support business line specific use cases
  • Establish standards and best practices for graph modeling, schema evolution, and governance within the enterprise data ecosystem
  • Review and manage interfaces supporting graph data access including APIs, visualization tools, and analytics platforms
  • Partner with data science and analytics teams to enable graph-based feature engineering and machine learning integration

Preferred Technical Expertise

  • Deep expertise in Neo4j platform capabilities, including clustering, security, and enterprise deployment patterns
  • Experience in graph data modeling and ontology design for complex enterprise datasets
  • Knowledge of connected data architecture patterns, including knowledge graphs and data fabrics
  • Experience integrating graph platforms with big data ecosystems (Spark, Kafka, etc.) and cloud-native services
  • Strong understanding of query optimization, indexing, and graph performance tuning
  • Experience with data ingestion frameworks supporting both batch and real-time pipelines
  • Proficiency in Python

Business Outcomes and Impacts

  • Enable enhanced fraud detection and prevention through network-based analysis of entities, transactions, and behaviors
  • Accelerate Customer 360 insights by linking fragmented data across business domains
  • Support real-time decisioning through connected data models and optimized graph queries
  • Drive improved data integrity and lineage visibility through network-based representations
  • Enable faster, more scalable delivery of insight-driven business capabilities through reusable graph models

Preferred Qualifications

  • 8+ years of experience in data engineering, including experience leading engineers and technical teams
  • Proven experience implementing Neo4j in enterprise environments
  • Familiarity with machine learning and AI techniques leveraging graph data
  • Experience working in Agile environments and leading cross-functional delivery teams
  • Experience with visualization and BI tools in conjunction with graph-derived insights

Modernization and Architecture Expectations

  • Advance the organization’s data architecture toward connected, relationship-driven models, complementing existing data platforms
  • Establish graph-first design patterns where relationship complexity drives business value
  • Integrate Neo4j into the broader enterprise data ecosystem (cloud, lakehouse, streaming platforms)
  • Promote adoption of knowledge graphs and semantic modeling to improve interoperability and reuse
  • Implement scalable, resilient graph data platforms aligned to enterprise security and compliance standards
  • Standardized graph engineering practices, including modeling guidelines, performance tuning, and operational monitoring
  • Partner with architecture leadership to define the future-state connected data vision, ensuring alignment with digital and AI strategies
About Us

Equal Employment Opportunity

Citizens, its parent, subsidiaries, and related companies (Citizens) provide equal employment and advancement opportunities to all colleagues and applicants for employment without regard to age, ancestry, color, citizenship, physical or mental disability, perceived disability or history or record of a disability, ethnicity, gender, gender identity or expression, genetic information, genetic characteristic, marital or domestic partner status, victim of domestic violence, family status/parenthood, medical condition, military or veteran status, national origin, pregnancy/childbirth/lactation, colleague’s or a dependent’s reproductive health decision making, race, religion, sex, sexual orientation, or any other category protected by federal, state and/or local laws. At Citizens, we are committed to fostering an inclusive culture that enables all colleagues to bring their best selves to work every day and everyone is expected to be treated with respect and professionalism. Employment decisions are based solely on merit, qualifications, performance and capability.

Equal Employment and Opportunity Employer

Job Applicant Data Privacy Policy

Background Check

Any offer of employment is conditioned upon the candidate successfully passing a background check, which may include initial credit, motor vehicle record, public record, prior employment verification, and criminal background checks. Results of the background check are individually reviewed based upon legal requirements imposed by our regulators and with consideration of the nature and gravity of the background history and the job offered. Any offer of employment will include further information.


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