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Data Strategy Lead, Digital Client

Job in Lawrence, Essex County, Massachusetts, 01842, USA
Listing for: Jobtailor
Full Time position
Listed on 2026-09-07
Job specializations:
  • IT/Tech
    Information & Knowledge Management, AI Business & Operations, Data Engineering
Salary/Wage Range or Industry Benchmark: 120000 - 170000 USD Yearly USD 120000.00 170000.00 YEAR
Job Description & How to Apply Below
Position: Data Strategy Lead, Digital Client Experience
  • Define the DCX data and knowledge strategy and roadmap for converting proprietary information into reusable knowledge and data products
  • Prioritize high-value domains and use cases with business, content, product, and operations partners
  • Build reusable knowledge products across client intelligence, claims intelligence, exposure data, risk engineering insight, benchmarking, policy wording, market appetite, and industry risk profiles
  • Embed analytics and insight into workflows, processes, and day-to-day decision-making
  • Define the knowledge layer, including business entities, relationships, taxonomies, ontologies, semantic standards, and entity resolution
  • Establish governance, trust, evaluation standards, and operating models for AI-ready knowledge products
  • Support AI and automation for discovery, classification, metadata extraction, data profiling, duplicate detection, and corpus preparation
  • Create feedback loops to improve metadata, retrieval, quality, and usability of knowledge assets
  • Define AI-readiness requirements for reports, presentations, contracts, broker notes, risk assessments, policy wording, claims summaries, and client deliverables
  • Partner with engineering teams to shape tools that search, retrieve, query, summarize, compare, and evaluate knowledge assets
  • Contribute to priority DCX work streams and translate ideas into practical solutions
Requirements
  • Proven experience in data strategy, data product management, enterprise data platforms, knowledge management, AI enablement, or digital product leadership
  • Ability to bridge analytics and operations, translating data insight into operational practice and vice versa
  • Strong understanding of retrieval-augmented generation, vector search, metadata, semantic layers, knowledge graphs, and agentic workflows
  • Experience with complex enterprise data environments, fragmented systems, inconsistent data quality, and mixed structured and unstructured sources
  • Ability to partner with senior business leaders, technology teams, data governance, legal, compliance, and product teams
  • Experience defining data ownership, stewardship models, business glossaries, data quality frameworks, or domain data products
  • Strong product mindset connecting technical enablement to business value and user adoption
  • Ability to operate in ambiguity and create structure across complex, cross-functional environments
  • Experience in financial services, insurance, risk advisory, professional services, or another data-rich regulated industry
  • Familiarity with modern lakehouse, data catalogue, data governance, and AI platform architectures
  • Familiarity with Databricks or comparable unified data and AI platforms, including Spark-based lakehouse environments
  • Experience preparing proprietary document corpora for AI search, summarization, and reasoning
  • Exposure to ontology design, knowledge graphs, semantic modeling, or entity resolution
  • Working knowledge of enterprise AI governance, model evaluation, responsible AI, or AI risk controls
  • Hands‑on experience building or scaling data products for client‑facing or colleague‑facing digital platforms
  • Experience enabling teams to adopt new data, knowledge, or AI capabilities in sustainable ways
Core Competencies

Demonstrates expertise in data strategy, knowledge management, and AI enablement, with a strong focus on building reusable knowledge products and embedding analytics into operational workflows. Proven ability to partner with cross-functional teams to drive data quality and governance in complex enterprise environments.

Highest-signal resume keywords
  • Data Strategy
  • Knowledge Management
  • AI Enablement
  • Data Governance
  • Product Management
Hard Skills
  • Data Product Management
  • Retrieval-Augmented Generation
  • Metadata Management
  • Knowledge Graphs
  • Entity Resolution
  • Data Quality Frameworks
  • Ontology Design
  • AI Risk Controls
  • Data Profiling
  • Document Corpora Preparation
Soft Skills
  • Operational Practice Translation
  • Cross-Functional Collaboration
  • Adaptability in Ambiguity
  • User Adoption Focus
  • Stakeholder Partnership
Industry Keywords
  • Financial Services
  • Insurance
  • Risk Advisory
  • Professional Services
  • Data-Rich Regulated Industry
Tools & Technologies
  • Databricks
  • Spark-Based Lakehouse
  • Data Catalogue
  • AI Platforms
  • Enterprise Data Platforms
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