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Data 360 + Lake Engineer

Insight Global

Palm Beach Gardens, FLJobSeen 4 days agoSeen in employer's feed 4 days ago

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At a glance

Compensation
No compensation found
Location
Palm Beach Gardens, FL
Work Authorization
Not specified

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Job overview

The Data 360 & Lake Engineer owns the movement, transformation, activation, and quality of customer and business data across Data 360 and the enterprise data lake. The role builds and maintains pipelines, identity resolution processes, connectors, transformations, segmentation, and data quality automation, supporting trusted unified profiles, analytics, personalization, and AI use cases.

Skills & qualifications

RequiredNice to have

Skills

Data EngineeringCDP EnvironmentsLakehouse EnvironmentsPythonSQLProduction Data PipelinesData TransformationOrchestrationIdentity ResolutionCustomer Profile UnificationProduction Data MonitoringData Quality AutomationBronze Silver Gold ArchitectureTroubleshootingRoot Cause AnalysisAI-Assisted EngineeringSalesforce Data CloudSalesforce Data Cloud ConnectorsSparkLakehouse ArchitectureCustomer Data PlatformsIdentity GraphsAI Data PipelinesRAGVector SearchAgentforceEnterprise CRM EcosystemsCRM Data IntegrationERP Data IntegrationMarketing Cloud IntegrationSAP Data IntegrationMES Data IntegrationManufacturingField ServiceDealer ChannelsDistributionReal-Time Data ProcessingData ObservabilityData Monitoring

Qualifications

5+ Years Data Engineering Experience

Full job description

Job Description

The Data 360 & Lake Engineer owns the end-to-end movement, transformation, activation, and quality of customer and business data across Data 360 and the enterprise data lake. This role serves as the execution layer between data modeling and business activation, building and maintaining pipelines, identity resolution processes, connectors, transformations, segmentation, and data quality automation. The ideal candidate combines strong data engineering fundamentals with CDP experience and production ownership, ensuring trusted unified profiles, reliable pipelines, and high-quality data for analytics, personalization, and AI use cases.

  • Build and maintain Data 360 connectors and ingestion pipelines
  • Configure and support transforms, segments, and activation workflows
  • Implement identity resolution and unified profile logic
  • Build and support lakehouse pipelines across bronze, silver, and gold layers
  • Monitor freshness SLAs and pipeline performance
  • Troubleshoot data quality, transformation, and activation issues
  • Identify and resolve failures across source systems and downstream consumers
  • Build automation for data quality validation and anomaly detection
  • Partner with Data Modelers to implement canonical data structures
  • Enable AI and Agentforce use cases through quality data foundations and retrieval indexes
  • Create and maintain monitoring, alerting, replay, and recovery mechanisms
  • Leverage AI to accelerate mappings, transformations, testing, and documentation
  • Own production reliability and operational excellence for data pipelines
  • Support customer profile activation and business-facing reporting needs

Skills and Requirements

  • 5+ years of Data Engineering experience

  • Experience working within both CDP and Lakehouse environments

  • Strong Python development experience

  • Strong SQL skills

  • Experience building and maintaining production data pipelines

  • Experience with data transformation and orchestration

  • Experience implementing identity resolution logic and customer profile unification

  • Experience monitoring and supporting production data environments

  • Experience creating data quality checks and automation

  • Experience supporting bronze/silver/gold architecture patterns

  • Strong troubleshooting and root-cause analysis capability

  • Production support ownership mindset Experience leveraging AI to accelerate engineering work while maintaining accountability for results

  • Salesforce Data Cloud / Data 360 experience

  • Salesforce Data Cloud connector implementation

  • Spark experience

  • Lakehouse architecture experience

  • Experience with customer data platforms (CDPs)

  • Identity graph or identity resolution expertise

  • Experience supporting AI, RAG, or vector-search data pipelines

  • Agentforce exposure

  • Data quality automation experience

  • Experience with enterprise CRM ecosystems

  • Experience integrating CRM, ERP, Marketing Cloud, SAP, or MES data

  • Manufacturing, field service, dealer, channel, or distribution experience

  • Real-time data processing experience

  • Data observability and monitoring experience

We are a company committed to creating diverse and inclusive environments where people can bring their full, authentic selves to work every day. We are an equal employment opportunity/affirmative action employer that believes everyone matters. Qualified candidates will receive consideration for employment without regard to race, color, ethnicity, religion, sex (including pregnancy), sexual orientation, gender identity and expression, marital status, national origin, ancestry, genetic factors, age, disability, protected veteran status, military or uniformed service member status, or any other status or characteristic protected by applicable laws, regulations, and ordinances. If you need assistance and/or a reasonable accommodation due to a disability during the application or the recruiting process, please send a request to [email protected].

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