(Senior) Analytics Engineer

Reposted Yesterday
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Los Angeles, CA, USA
In-Office
110K-165K Annually
Senior level
AdTech • Digital Media • Marketing Tech • Design
The Role
Build and improve production data systems connecting advertising performance, creative workflows, and business operations. Responsibilities include extracting data from advertising APIs, maintaining orchestrated pipelines, modeling data in Snowflake, defining trusted metrics, developing Power BI reports and semantic datasets, improving reliability and observability, and supporting analytics and machine learning applications. The role requires cross-functional collaboration and ownership across the full data lifecycle.
Summary Generated by Built In
(Senior) Analytics Engineer

TubeScience Labs: Los Angeles, in person — $110,000–$165,000

TubeScience Labs' mission is to create trusted, scalable, and self-improving AI systems that power the largest performance-based paid social creative video company in the world.

TubeScience is Meta's largest creative partner and AppLovin's #1 creative partner, producing 8,000+ original ads every month from a 100,000 sq. ft. Los Angeles studio, backed by a library of 1.6 million+ performance ads and $3B in annual managed ad spend. That is what gives TubeScience one of the richest first-party creative-performance datasets anywhere.

Labs turns that data — and the playbook behind billions in spend — into frontier AI tools that actually ship. We are an AI-native lab working end to end, from research and design to coding, experimentation and delivery. Our pipelines run against real creative, real deadlines, and real budgets every day.

You'll join a small, AI-empowered, senior team of engineers and product managers, with direct access to expert users and full ownership of the systems you build. You'll be expected to use the latest frontier and open-weight models in every phase of the job, from discovery and prototyping to building, testing and deployment.

The role

You'll build the data systems that connect ad performance to creative decisions. Our platform brings together data from advertising channels, creative production workflows and business operations, and your work makes that data reliable, understandable and useful in reports, internal products, and future analytics and machine learning applications.

The role is hands-on across the whole data lifecycle: extracting data from APIs, maintaining dependable pipelines, modeling data in Snowflake, defining metrics, and delivering insights through Power BI and other tools. Much of the foundation already exists. You'll learn how its parts fit together, make it faster and more reliable, and help shape what we build next.

We weigh directly relevant experience heavily. This platform carries real advertising data and feeds the reporting the business runs on from the first week, so tell us plainly where your background maps: advertising data, warehouse modeling, pipelines or BI.

We are open to hiring at Analytics Engineer or Senior Analytics Engineer level, depending on experience and scope of ownership.

Responsibilities
  • Build and evolve the data platform, from external sources through ingestion, transformation and curated models to BI and application delivery
  • Extract and integrate advertising data from Meta, TikTok, Google and Snapchat using their APIs and Python, handling pagination, rate limits, backfills, schema changes and reconciliation with the platforms
  • Build performant Snowflake models, and define and document the metrics the business relies on together with stakeholders
  • Maintain and improve Power BI reporting, including a possible migration to a better BI tool, and build datasets that link ad outcomes to creative strategy and production decisions
  • Investigate discrepancies and pipeline failures, add checks and observability, and use agents to automate the repetitive work
  • Work with data, product, engineering and business partners on analytics and machine learning approaches that feed ad performance back into creative development
Minimum qualifications
  • You have 5+ years in analytics engineering, data engineering or a closely related role, with meaningful ownership of production data systems.
  • You have worked with advertising or marketing performance data, ideally pulling it directly from platforms such as Meta, TikTok, Google or Snapchat.
  • You are strong in SQL and Python, and you can reason through the full path from a source API to a business-facing metric or report.
  • You have designed data models and warehouse architecture that support changing business needs, including layered approaches such as medallion architecture where useful.
  • You have built or maintained orchestrated pipelines, and you understand failure recovery, backfills, data quality and operational reliability.
  • You have developed Power BI reports or semantic datasets, and you have worked with stakeholders to resolve ambiguous metric definitions.
  • You are comfortable with GitHub-based development, code review, and cloud infrastructure on AWS or GCP.
  • You investigate problems independently, make practical engineering decisions, and explain the trade-offs to technical and business partners alike.
Preferred qualifications
  • You have worked on creative analytics, attribution or cross-platform performance measurement.
  • You have optimized Snowflake or Databricks performance, including dynamic tables.
  • You have used transformation tools such as Coalesce and orchestration tools such as DBOS or Airflow.
  • You have built datasets or features for internal applications, experimentation or machine learning.
  • You use AI-assisted development fluently, while applying your own judgment to system design, correctness and production changes.
The problems to solve
  • Advertising data from many platforms. Meta, TikTok, Google and Snapchat, each with its own API, limits and quirks, reconciled with what the platforms themselves report.
  • A platform that grows with the business. Architectural choices that still hold as data volumes and use cases grow.
  • Metrics people trust. Consistent definitions across advertising, creative, client and operational data, agreed with stakeholders and documented.
  • Reporting that connects ads to creative. Datasets that show which creative decisions actually moved performance.
  • Reliability without the toil. Fewer surprises in the pipelines, with agents handling the repetitive checks.
  • Feedback loops. Analytics and machine learning that feed ad performance back into creative development.
How the hiring works

Three conversations and a short piece of practical work. Recruiter screen, then an engineer from the team, then a practical assignment and a walkthrough with the hiring manager. Roughly 17 business days end to end if we both move quickly. You will get a decision either way at every stage.

Skills Required

  • At least 5 years of experience in analytics engineering, data engineering, or a closely related role
  • Meaningful ownership of production data systems
  • Experience with advertising or marketing performance data, preferably from Meta, TikTok, Google, or Snapchat
  • Strong SQL and Python skills
  • Ability to reason from source APIs through business-facing metrics or reports
  • Experience designing data models and warehouse architecture for changing business needs
  • Experience with layered data architecture, such as medallion architecture
  • Experience building or maintaining orchestrated pipelines
  • Understanding of failure recovery, backfills, data quality, and operational reliability
  • Experience developing Power BI reports or semantic datasets
  • Experience resolving ambiguous metric definitions with stakeholders
  • Comfort with GitHub-based development and code review
  • Experience with cloud infrastructure on AWS or GCP
  • Ability to investigate problems independently and explain engineering trade-offs to technical and business partners
  • Experience with creative analytics, attribution, or cross-platform performance measurement
  • Snowflake or Databricks performance optimization, including dynamic tables
  • Experience with transformation tools such as Coalesce
  • Experience with orchestration tools such as DBOS or Airflow
  • Experience building datasets or features for internal applications, experimentation, or machine learning
  • Fluency with AI-assisted development
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The Company
HQ: Los Angeles, California
197 Employees
Year Founded: 2016

What We Do

As one of the fastest growing startups in Los Angeles, we're revolutionizing the way in which companies approach successful video advertising. Our team of award-winning Producers, Editors, Directors, Engineers, and Performance Marketing Managers are building a global studio where we can conceptualize, shoot, and produce hundreds of videos per day. Unlike traditional advertising agencies that pitch creative concepts for companies, hope they will perform, and outsource filming, we design videos that are guaranteed to convert. We use data to guide our creative process and leverage testing and analysis to make adjustments to react to users in real-time. What's atypical about the company: We're fast and data-driven: our teams develop concepts in the morning, shoot/edit in the afternoon, launch in the evening, and iterate the next day based on real-world performance. We’re a behavioral R&D lab at the core: We put 2,000+ video experiments per week, watched by tens of millions of people per day, that give us deep insights into how people make decisions. Over the past couple years, we’ve built an enormous library of IP around human behavior and visual communication. We work on a pure pay for performance basis. Zero production fees for video. Clients only pay us if our videos outperform anything they’re running internally.

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