Analytics Engineer - Direct Hire - 4 days onsite

DEXTER TECHNOLOGIES INC

Parsippany-Troy Hills (NJ)

Hybrid

USD 110,000 - 140,000

Full time

14 days+
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Benefits offered by this job

401(k)
Bonus based on performance
Paid time off

Job summary

Dexter Technologies Inc. is seeking an Analytics Engineer in Houston, TX. This hybrid role blends data engineering and business intelligence.

You will design and optimize SQL, build staging tables, and create fact/dimension models in an Azure SQL warehouse while developing semantic Power BI models. You will work with Sr. Manager Data & Analytics and cross-functional stakeholders in Finance and Operations, monitor data pipelines, troubleshoot failures, and contribute to data standards,

Qualifications

  • Bachelor’s degree in Computer Science, Data Science, Information Systems, or a related field.
  • 3+ years in a data-focused role with hands-on SQL work (CTEs, window functions, multi-source views).
  • Experience building semantic models in Power BI and writing DAX.
  • Ability to translate business requirements into data models.

Responsibilities

  • Design, build, and maintain SQL views, staging tables, and fact/dimension models in our Azure SQL data warehouse.
  • Build and maintain Power BI semantic models and the reports and dashboards for stakeholders.
  • Monitor Azure Data Factory pipelines and dataset refreshes; respond to failures with basic troubleshooting.
  • Make minor pipeline modifications to support changing business requirements.
  • Partner with business SMEs to translate reporting needs into accurate data models.
  • Document data models, metric definitions, and report logic for data lineage.

Job description

Benefits:
  • 401(k)
  • Bonus based on performance
  • Paid time off

Dexter Technologies Inc., is a leading provider of Staffing and Recruiting Services. For over two decades, we have put countless professionals to work at exciting opportunities. We are proud of the fact that many of them have been promoted to more senior roles: management, senior management, and senior executive leadership positions.

We are actively seeking qualified candidates for the following position for our client, who is an industry leader:

Analytics Engineer
Location: Houston, TX
Type: Full-time

This role is a hybrid, bridging the gap between data engineering and business intelligence. You'll spend part of your time writing and optimizing SQL — building staging tables, views, and fact/dimension models — and part of your time building semantic models and reports in Power BI. Keeping an eye on our scheduled data pipelines, you’ll handle first-line troubleshooting when something fails. You'll work closely with the Sr. Manager, Data & Analytics, and with business stakeholders across Finance, Operations, and other functions who depend on accurate, well-modeled data.

This is a great fit for someone who wants breadth — real ownership across the data stack — on a team small enough that your work visibly matters.

Key Responsibilities
  • Data modeling & SQL: Design, build, and maintain SQL views, staging tables, and fact/dimension models in our Azure SQL data warehouse, including deduplication and business-rule logic (e.g., status-based routing, multi-source reconciliation).
  • Semantic models & reporting: Build and maintain Power BI semantic models — relationships, DAX measures, security roles — and the reports and dashboards built on top of them for business stakeholders and company-wide reporting.
  • Pipeline support: Share responsibility with the Sr. Manager, Data & Analytics for monitoring scheduled Azure Data Factory pipelines and Power BI dataset refreshes. Respond to failures and perform basic troubleshooting.
  • Pipeline modifications: Make minor modifications to existing pipelines to support new or changing business requirements, as your familiarity with the tooling grows.
  • Business partnership: Partner with business SMEs to translate reporting requests and business logic (commission structures, revenue recognition, inventory rules, etc.) into accurate, well-documented data models.
  • Documentation: Write and maintain documentation for data models, metric definitions, and report logic so that data lineage and ownership are clear beyond any one person.
  • Standards & quality: Follow and help evolve team standards for naming conventions, DAX style, and semantic model design as the team's practices mature.
  • Continuous Improvement: Proactively identify opportunities for process improvements, optimize current data workflows, and incorporate new technologies or tools to enhance data analytics capabilities.
Knowledge and Skills
Required
  • 3+ years in a data-focused role (analytics engineer, BI developer, data analyst, or similar) with hands‑on SQL work — comfortable with CTEs, window functions, and reading/writing complex, multi-source views.
  • Solid Power BI experience beyond report formatting — you've built semantic models from scratch and written DAX involving CALCULATE, filter context, and context transition, not just basic aggregations.
  • Dimensional modeling fundamentals (star schemas, slowly changing dimensions).
  • A track record of working directly with business stakeholders to translate ambiguous requirements or business rules into a working data model.
  • Strong attention to detail with data integrity — you double-check your joins and know how a bad join or an inclusive date boundary can quietly break a report.
Preferred
  • Exposure to an ERP or other core business system as a data source (order, invoicing, or GL data) - you understand that business rules, not just dates, often drive how records should be deduplicated or classified.
  • Understanding of ETL/ELT concepts and working knowledge of orchestration tools like Azure Data Factory or similar tools for automating data pipelines.
  • Familiarity with Microsoft Fabric Administration and Environment (Lakehouses, Dataflows Gen2) — not required, but a plus given our platform direction.
  • Basic Git / source control experience.
  • Python for data tasks.
  • Knowledge of data quality frameworks and data governance practices.
Qualifications
  • Bachelor’s degree in Computer Science, Data Science, Information Systems, or a related field. Master’s degree is a plus.
  • 3+ years in a data-focused role (analytics engineer, BI developer, data analyst, or similar) with hands‑on SQL work — comfortable with CTEs, window functions, and reading/writing complex, multi-source views.
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