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RYZ Labs

Senior Data / Analytics Engineer

Posted 4 months ago
5-10 years experience
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AI Summary

The role involves owning and evolving data architecture, including ingestion, transformation, and reporting layers within a centralized cloud data warehouse. You will build scalable data pipelines, develop data quality frameworks, and partner with finance to provide actionable insights through dashboards and AI-driven workflows.

At Ryz Labs, we’re looking for a hands-on Senior Data Engineer / Analytics Engineer to own and evolve
one of our clients’ data platforms, reporting layer, and AI-driven data capabilities.
You’ll report directly to the Head of Data & Analytics and operate as a high-impact individual
contributor across finance, operations, merchandising, marketing, and product. This is a builder
role, not a people manager role.


You’ll be expected to move quickly, work scrappily, and take ownership from problem definition
through implementation. This role is ideal for someone who thrives in a startup or scale-up
environment, where speed, iteration, and pragmatism matter more than perfection.


What You’ll Do
• Own and evolve data architecture across ingestion, transformation, and
reporting layers, with a centralized cloud data warehouse.
• Build and maintain scalable data pipelines across a variety of internal and external data
sources, ensuring reliability, completeness, and accuracy.
• Develop robust validation frameworks to monitor data quality and quickly identify issues.
• Write and optimize complex SQL to power analytics, reporting, and business
decision-making.
• Design and maintain data models that support financial reporting, operational analytics,
and merchandising insights.
• Partner closely with Finance to ensure accurate, reconcilable reporting across revenue,
costs, and unit economics.
• Build and maintain dashboards and reporting used by leadership to drive decisions
across the company.
• Identify and resolve data issues quickly, balancing speed and accuracy in a fast-moving
environment.
• Support integrations between core business systems and ensure clean, consistent data
across platforms.
• Explore and implement AI-driven workflows that enhance data accessibility and
decision-making.
• Automate manual reporting processes and improve operational efficiency across teams.
• Act as a cross-functional partner, translating ambiguous business questions into clear,
actionable insights.


What We’re Looking For
• 5–10+ years of experience in data engineering, analytics engineering, or advanced
analytics roles.
• Strong experience with GCP and BigQuery, including materialized views, scheduled
queries, and large-scale SQL optimization.
• Experience with modern data ingestion tools—Airbyte (Cloud or OSS) strongly preferred;
comfort managing connectors, debugging sync failures, and building validation
frameworks.
• Strong proficiency in SQL and data modeling, with comfort using AI tools (e.g., Claude
Code) to accelerate development. You should be fluent in CTEs, window functions,
UNION ALL patterns, date-spine techniques, and anti-join logic.
• Proven experience supporting financial reporting and working closely with finance
teams—P&L reconciliation, COGS analysis, revenue waterfalls, and unit-economics
datasets.
• Experience building dashboards and reporting in modern BI tools.
• Familiarity with AI workflows and building structured datasets for LLM-powered agents.
• Experience working across multiple business domains (ops, marketing, finance, product,
etc.).
• Strong ownership mindset with the ability to operate independently.
• Comfortable in a fast-paced, ambiguous environment with shifting priorities.


Bonus Points
• Experience with ERP or inventory management systems (especially warehouse/3PL
integrations).
• Experience in ecommerce, recommerce, logistics, or marketplace
businesses—especially Shopify-based platforms.
• Familiarity with multi-touch attribution, post-purchase surveys (e.g., Fairing/PPS), or
event-level GA4 data.
• Experience with customer cohort analysis, retention modeling, or LTV forecasting.
• Exposure to pricing, inventory aging, or supply chain/fulfillment data systems.
• Experience with Klaviyo, Attentive, or similar lifecycle marketing data integrations.
• Familiarity with demographic enrichment tools or custom API connector development.

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