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Posted 6 days ago

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Data Analytics Engineer

United StatesRemoteFull-time

AI Summary

Architects and builds a cloud data warehouse from the ground up, owning end-to-end data transformations, ELT pipelines, semantic models, governance, and data quality to serve enterprise analytics and AI-assisted reporting.

About this role

This position is listed on behalf of a partner company, who manages all applications and next steps. Our partner is looking for a Data Analytics Engineer based in United States.

This is a foundational data role focused on building the infrastructure that enables reliable, scalable business analytics.
You will architect and establish a cloud data warehouse from the ground up, creating the technical foundation for a growing analytics function.
Your work will connect data from go-to-market, finance, product, and customer success systems into a trusted source of truth.
You’ll own transformation layers, ELT pipelines, semantic models, governance, and data quality across the analytics ecosystem.
The role also offers an opportunity to shape AI-assisted reporting through a semantic layer designed for natural-language and agent-based use cases.
You’ll work closely with business stakeholders to translate measurement needs into stable, well-documented data products.
This high-visibility position combines hands-on engineering with architectural ownership and the opportunity to establish modern data practices from the ground up.

Accountabilities:

  • Architect, build, and maintain a modern cloud data warehouse that serves as the foundation for enterprise analytics.
  • Own data transformations end to end, from raw ingestion through reliable, documented, and stable analytical tables.
  • Design and maintain ELT pipelines that integrate data from GTM, Finance, Product, Customer Success, and other business systems.
  • Establish the technical foundation for BI and semantic-layer capabilities, including metric definitions, data models, and access structures.
  • Develop curated data models supporting product usage, customer adoption, account health, and go-to-market reporting.
  • Own data quality, governance, and lineage through freshness monitoring, automated testing, access controls, documentation, and source-of-truth standards.
  • Partner closely with business stakeholders to understand measurement requirements and translate them into scalable analytical solutions.
  • Help establish data infrastructure that can support internal AI-powered querying, reporting, and natural-language analytics.
  • Requirements:

    • 6+ years of experience in analytics engineering, data engineering, or a related field, with demonstrated ownership of production data models.
    • Strong SQL expertise and a track record of delivering analytical models relied upon by multiple teams.
    • Hands-on experience with modern cloud data warehouses, with Snowflake preferred or comparable platforms such as BigQuery.
    • Extensive experience with a transformation framework such as dbt or SQLMesh.
    • Proficiency in Python or a similar scripting language for data ingestion, validation, automation, or related engineering tasks.
    • Experience working with BI or semantic-layer platforms such as Omni, Looker, Tableau, or comparable tools.
    • Strong judgment around data governance, access controls, data quality, lineage, and the responsible handling of sensitive information.
    • Experience supporting AI-assisted or natural-language reporting and semantic layers designed for LLM or agent-based applications is a plus.
    • Familiarity with GTM and Customer Success platforms such as Salesforce, Gainsight, or HubSpot is advantageous.
    • Experience with machine learning or statistical forecasting, including time-series or churn-propensity models for metrics such as ARR and customer retention, is a plus.
    • Ability to perform repetitive computer-based tasks involving wrists, hands, and fingers, and to remain seated or stationary for extended periods.
    • Benefits:

      • Estimated base salary of $160,000–$190,000 plus bonus.
      • Comprehensive benefits package in addition to cash compensation.
      • 401(k) plan.
      • Medical and dental coverage.
      • Total Rewards package with additional benefits based on eligibility.
      • Compensation may vary depending on market considerations and objectively assessed individual qualifications.

Skills

Access ControlsBigQueryData GovernanceData LineageData QualityDbtELT PipelinesGainsightHubspotLookerOmniPythonSalesforceSemantic LayerSnowflakeSQLSQLMeshTableau

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