Data & Analytics Engineer

Posted 2 Days Ago
Calabasas, CA, USA
In-Office
Mid level
eCommerce • Fashion • Retail
The Role
Build and maintain dbt models and ETL/ELT pipelines on BigQuery and Daasity, connect marketing, inventory, and finance data, support KPI tracking and predictive models, deploy dashboards, and collaborate with AI and business teams to ensure clean warehouse outputs for analytics and automation.
Summary Generated by Built In

True Classic is hiring a Data & Analytics Engineer to partner in owning our data platform infrastructure and to serve as a key builder connecting our data warehouse to our AI, finance, and business stakeholder teams. This role will support core analytics engineering functions, ensuring clean, well-structured, and reliable data pipelines built to best practice standards.

This role is ideal for someone who is hands-on and technically rigorous, with a strong command of data engineering best practices — including pipeline design, data modeling, testing, and documentation — and can contribute meaningfully to a mid-build platform in a fast-paced, evolving environment.

All of True Classic’s roles are global and omni-channel, leading designated areas of accountability across all product categories, countries, and sales and marketing channels. This role will have impact across DTC, retail, wholesale, marketplaces, and emerging channels, ensuring strategic alignment and executional rigor across the enterprise.

Areas of Accountability

Extend & Maintain the Data Platform
  • Build and maintain dbt models following best practices for modularity, testing, documentation, and code quality

  • Contribute to completion of open data model workstreams across inventory, media, and product functions

  • Expand data source connectivity and pipeline coverage across marketing and fulfillment systems

  • Maintain and improve ETL/ELT workflows via Daasity and BigQuery

  • Help monitor and optimize cloud data infrastructure for cost and performance

Bridge Data to the Business
  • Deploy and maintain Omni dashboards on top of BigQuery for cross-functional stakeholders

  • Support business KPI tracking by structuring financial data for forecasting, cost modeling, and channel-level P&L

  • Contribute to predictive models for demand forecasting, inventory planning, and revenue projections

  • Build and maintain the serving layer that the AI team queries — clean, modeled BigQuery tables in place of direct API calls

AI-Augmented Development
  • Use AI coding tools (Claude Code, Cursor, Copilot) daily to write dbt models, debug pipelines, and accelerate development

  • Collaborate with the AI team to ensure the warehouse serves their applications with clean inputs for automation, ML models, and real-time ops tools

  • Identify opportunities where AI can automate data quality checks, anomaly detection, and pipeline monitoring

Cross Functional Collaboration
  • Work with finance to ensure financial data structures support forecasting and P&L reporting needs

  • Partner with the AI team to ensure warehouse outputs support downstream automation and machine learning applications

  • Work alongside merchandising, operations, and analytics stakeholders to translate business questions into reliable data models and visualizations

Qualifications
  • 4+ years of experience in data engineering or analytics engineering

  • Strong understanding of data engineering best practices: pipeline design, data modeling, testing, and documentation

  • Hands-on experience with dbt Cloud, Google BigQuery, and SaaS API pipeline development

  • Strong SQL skills including joins, window functions, and CTEs

  • Python proficiency for pipeline scripting, API integrations, and light modeling

  • Familiarity with statistical modeling and predictive analytics (regression, time series)

  • Comfortable working with non-technical stakeholders to translate business questions into data models and visualizations

  • Proficiency with AI coding tools — daily use expected

Preferred Qualifications
  • NetSuite or ERP experience

  • Daasity, Shopify/Amazon data

  • Marketing attribution platforms (Meta CAPI, Google Ads, Triple Whale),

  • Omni/Looker, GitHub-based workflows

Workplace Arrangement

This role is on-site (5x week in office) based in Calabasas, CA.

Compensation and Benefits

Compensation
  • Competitive Salary + bonus

Time Off
  • Unlimited PTO and sick time

Health & Wellness
  • Company-paid medical, dental, and vision insurance

  • $100/month Health & Wellness stipend

  • Free Employee Assistance Program (EAP)

Work & Growth Support
  • $100/month Personal Workspace/Office stipend

Perks
  • $1,000/year True Classic merchandise allowance

  • 401(k) plan with 3% company match

Skills Required

  • 4+ years of experience in data engineering or analytics engineering
  • Strong understanding of data engineering best practices: pipeline design, data modeling, testing, and documentation
  • Hands-on experience with dbt Cloud, Google BigQuery, and SaaS API pipeline development
  • Strong SQL skills including joins, window functions, and CTEs
  • Python proficiency for pipeline scripting, API integrations, and light modeling
  • Familiarity with statistical modeling and predictive analytics (regression, time series)
  • Comfortable working with non-technical stakeholders to translate business questions into data models and visualizations
  • Proficiency with AI coding tools (Claude Code, Cursor, Copilot) — daily use expected
  • NetSuite or ERP experience
  • Daasity, Shopify/Amazon data experience
  • Experience with marketing attribution platforms (Meta CAPI, Google Ads, Triple Whale)
  • Experience with Omni/Looker and GitHub-based workflows
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The Company
125 Employees
Year Founded: 2019

What We Do

True Classic is a direct-to-consumer apparel company focused on premium men’s clothing, especially soft, fitted T-shirts and versatile everyday basics. It aims to make fit, comfort, quality, and confidence accessible, designing products for different men’s body types. The brand sells primarily online while expanding through owned stores and retail partners, and its mission emphasizes helping people look and feel their best.

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