Lead Analytics Engineer - Enterprise Data & AI

Zoox
United States
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
2 years minimum
Working hours
Regular working hours
Job source

Tech stack

Artificial Intelligence Airflow Data Analysis Automation of Tests BigQuery Data Architecture Data Structures Executive Information Systems Python (Programming Language) Performance Tuning Query Optimization Cloud Services
+18 more
Anaplan Salesforce.Com SAP (Applications) SQL Databases Tableau (Software) Large Language Models Snowflake Kubernetes Low Latency Data Analytics SAP S/4HANA SAP Ariba Tools for Reporting Streamlit Framework Software Version Control Workday SAP BRIM (Billing and Revenue Innovation Management) Databricks

Job description

Zoox is seeking a high-agency, hands-on Lead Analytics Engineer to bridge the gap between our complex enterprise data sources and our AI-driven decision-making systems. You will lead the design and implementation of our semantic layer and data modeling strategy, ensuring that data from SAP (S/4HANA, Ariba, BRIM, ME), Workday, Salesforce, and Anaplan is transformed into clean, performant, and “AI-ready” datasets. This is a critical leadership role for a builder who wants to own the data foundation that powers our intelligent agents and business-wide analytical workflows., * Design and maintain a unified semantic model that provides a “single source of truth” for cross-functional stakeholders, AI Agents, Self Serve Analytics and Executive dashboards.

  • Collaborate with Data & AI Engineers to structure and optimize the data that allows to query enterprise knowledge with high accuracy and low latency.
  • Establish organizational standards for data modeling, version control, testing, and documentation to ensure high data quality and system maintainability.
  • Implement automated testing and observability frameworks that proactively identify data anomalies and “self-heal” pipelines, ensuring our data is always reliable for downstream consumption.
  • Partner with cross-functional business leaders to translate complex operational requirements into high-impact, scalable data solutions.

Requirements

  • 10+ years in Data Engineering & Analytics, with extensive hands-on experience building a semantic framework using Python, SQL and modern orchestration frameworks (e.g. Airflow, Lakeflow, Argo). With at least 2+ years of hands-on experience deploying AI generated code.
  • Extensive experience using modern data stacks (e.g. Snowflake/Databricks, Big Query) to build complex, enterprise-grade data models.
  • Deep understanding of data structures within large-scale enterprise platforms (SAP S/4HANA, Salesforce, Workday, etc.) and the ability to reconcile disparate schemas into clean models.
  • Exceptional ability to design modular, scalable, and performant data architectures that prioritize ease of use for downstream AI agents and Analytics tools.
  • A track record of driving technical projects from design to completion, mentoring junior engineers, and fostering a culture of collaboration and data excellence., * Experience using LLMs to automate data reconciliation, anomaly detection or root-cause analysis within analytics pipelines with cloud-native data platforms (e.g., Snowflake, Databricks).
  • Expert-level Python & SQL skills with a focus on query optimization and performance tuning for massive datasets and reviewing AI generated code.
  • Proficiency in creating self-service Analytics environments (e.g., Tableau, Streamlit) that provide actionable insights to business stakeholders.

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