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Senior Data Engineer

Consigli Construction
CompanyConsigli Construction
CategoryEngineering
LocationProvidence
RemoteOn-site (inferred)
EmploymentFull-time
LevelSenior
SalaryNot stated by the employer
Posted25 Jun 2026
Last verified30 Jul 2026
SourceEmployer career page (workable)
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Description
Employment Type:    Full-Time  FSLA:   Salary/Exempt  Division:   Information Technology  Department:  Enterprise Systems & Data  Reports to:   Senior Manager, Enterprise Systems & Data  Supervisory Duties:  No  Salary Range: $100,000 - $120,000   Consigli is strengthening its Data & Analytics capabilities to provide reliable, real‑time, and predictive insights to project teams and business leaders. The Senior Data Engineer supports the design, build, and optimization of our analytical data environment, including pipelines, semantic models, data quality controls, and governed access patterns. This role serves as both a hands‑on technical contributor and a coordinator of data management activities—partnering with project teams, security, and analytics stakeholders to ensure our data products are trusted, well-modeled, and ready for advanced reporting and AI use cases.    Responsibilities / Essential Functions  Data Platform & Architecture Support  Contribute to the design and evolution of Consigli’s lakehouse architecture (Databricks, Azure, Fabric).  Support ingestion, transformation, and serving patterns across Databricks notebooks, Empower and related tools.  Maintain environments, workspaces, and CI/CD patterns with guidance from senior technical leaders.  Data Modeling & Semantic Layer   Support the development and maintenance of subject-area models, conformed dimensions, and governed metrics used across reporting and dashboards.  Partner with business and project teams to align and standardize KPIs for cost, schedule, risk, and operational reporting.  Help refactor business logic from dashboards or ad‑hoc SQL into governed transformations and reusable metrics.  Contribute to scaling master data domains (Project, Vendor, Budget, People, etc.) and stewarding data definitions.  Pipelines, Quality & Reliability  Build, maintain, and document pipelines and datasets that are versioned, code-reviewed, and tested.  Implement data validation rules, anomaly detection (rule-based or ML-assisted), monitoring, and error-handling procedures.  Participate in defining SLAs, tracking reliability, and executing incident response playbooks.  Continuously identify opportunities to improve pipeline performance and processing efficiency.  Governance, Security & Compliance  Assist with applying data classification, masking, access controls, and privacy-by-design principles.  Partner with security and platform teams to support compliance audits and maintain documentation.  Collaboration & Enablement  Work with project teams and business stakeholders to understand data needs and deliver reliable, well-modeled datasets.  Promote data literacy by helping teams access and use trusted analytics assets.  Provide clear communication, documentation, and best-practice guidance in data modeling, quality, and governance.    Key Skills  Technical Skills  Strong SQL and Python skills.  Proficiency with Azure-based tools (Data Factory, Fabric/Lakehouse, OneLake) or Databricks equivalents.  Deep understanding of data lineage, cataloging, governance, data quality frameworks, and security best practices.  Experience with CLI’s and AI-assisted workflows (Claude desktop, Databricks Genie, or equivalent)  Familiarity with enterprise systems such as Sage 300/CMiC (ERP), Workable/SagePeople (HRIS), and Cosential/Unanet (CRM) is a plus.  Professional Skills  Excellent communication skills with the ability to trans
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