Discord

Senior Data Engineer, Ads

Discord$220K — $245K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7+ years of experience in writing production code and architecting data pipelines for high-volume consumer data in advertising or marketing technology.
  • 7+ years of direct experience in designing and maintaining complex data models and systems for both structured and unstructured data.
  • Expertise in SQL, Python, and modern data engineering frameworks, focusing on performance and scalability.
  • Experienced in digital advertising data engineering, particularly in building pipelines for ad serving and conversion tracking.
  • Proven ability to implement data quality audits and monitoring for large datasets (billions of rows).
  • Strong technical communication skills, capable of articulating complex implementations to non-technical stakeholders.
  • Collaborative nature with a drive for technical excellence and problem-solving.

Responsibilities

  • Create and maintain complex data pipelines and foundational datasets for advertising products.
  • Design and build ETL processes and analytical frameworks with SQL and Python.
  • Develop data quality frameworks and monitoring systems at scale.
  • Collaborate with data scientists and product teams to implement scalable data solutions.
  • Drive technical initiatives to address complex data engineering challenges.
  • Create dashboards and reports to enable data-driven decision-making.
  • Lead and mentor fellow engineers through collaborative coding practices.

Benefits

  • Work in a pivotal role that influences the future of gaming.
  • Be part of a passionate team focused on community inclusion and innovation.
  • Access to opportunities for professional development within a supportive environment.
  • Engagement in hands-on problem-solving with exceptional engineering talent.
Full Job Description
Discord seeks a seasoned Data Engineer, focusing on our advertising product data. In this role, you will drive technical vision and strategy for ads data engineering in support of our ML initiatives while building and maintaining sophisticated data pipelines, datasets, and analytical tools. You will lead cross-functional initiatives to transform our advertising products through data-driven insights and mentor fellow engineers to deliver exceptional results.

This role works heavily with Data Science, Machine Learning, and product. If leading technical innovation, architecting scalable solutions, and empowering teams through data excites you, we encourage you to make a move!

What You'll Be Doing
  • Design and own core ads data models: fact/dim tables, canonical datasets, and aggregation layers that power delivery, measurement, targeting, attribution, and ML use cases.
  • Build and maintain the ML data that enables ads ranking, delivery, and targeting - including feature development, label generation workflows, intra-day training, and ML input observability to catch data quality issues before they degrade model performance.
  • Build conversion measurement pipelines and integrate third-party attribution data - including Conversion Attribution and Mobile Measurement Partner (MMP) integrations (Adjust, AppsFlyer, Singular) - ensuring attribution accuracy and data parity across measurement surfaces.
  • Build batch and near real-time pipeline infrastructure across the ads ecosystem - pushing toward lower-latency data for ML and reporting use cases on our BigQuery + dbt + Dagster stack. Partnering with Data Platform on launch and success of new data processing engines to support low latency requirements..
  • Develop data quality frameworks, monitoring systems, automated anomaly detection, and SLA infrastructure for critical ads pipelines at massive scale.
  • Proactively identify foundational data infrastructure gaps - including those with broad implications across ML, measurement, and reporting - and design scalable, canonical solutions that multiple teams can depend on.
  • Build systems from scratch in a rapidly evolving, greenfield advertising data environment - making sound architectural decisions with incomplete information and balancing short-term delivery with long-term infrastructure investment.
  • Drive alignment across Data Science, ML Engineering, Ads Product, and GTM teams through clear narratives that connect data infrastructure decisions to business outcomes and revenue impact.
  • Mentor engineers through technical challenges, code and design reviews, and ownership of complex projects - contributing to the culture and engineering standards of the Data Engineering team team.

What you should have
  • 5+ years of hands-on experience writing production code and architecting data pipelines with high-volume consumer data in advertising technology domains (ad delivery, ranking, targeting, identity, conversion measurement).
  • Deep expertise in digital advertising data engineering - specifically in ads delivery, conversion measurement, attribution pipelines, or ML feature data infrastructure. Experience with Conversion Data and APIs, MMP integrations, or identity graph infrastructure is strongly valued.
  • Demonstrated experience building data models in a greenfield or 0-to-1 environment where requirements change frequently, documentation is sparse, and architectural decisions are made with incomplete information.
  • Expert-level SQL and Python. Strong ability to design performant, maintainable data models and write production-quality pipeline code.
  • Proven hands-on experience with data quality audits, monitoring systems, and automated anomaly detection for massive-scale datasets (billions+ rows) - including quality frameworks designed for ML inputs.
  • Strong technical communication skills with the ability to drive alignment, influence prioritization, and earn adoption from technical stakeholders.
  • Collaborative mindset and strong cross-functional instincts with experience building trusted working relationships with Data Science, ML Engineering, and Product teams.

Bonus Points
  • Passion for Discord or gaming communities
  • Experience with data visualization and dashboarding technologies (Looker, Tableau, or similar)
  • Experience with designing data architecture to power a variety of use cases, including reporting (internal and external), adhoc analysis, experimentation.
  • Working with Data AI tools to establish greater self service utility for your customers.
  • Experience building near real-time or streaming pipeline infrastructure (e.g., Kafka, Spark Streaming, or equivalent) in addition to batch processing is preferred.

The US base salary range for this full-time position is $220,500 to $245,000 + equity + benefits. Our salary ranges are determined by role and level. Within the range, individual pay is determined by additional factors, including job-related skills, experience, and relevant education or training. Please note that the compensation details listed in US role postings reflect the base salary only, and do not include equity, or benefits.

About Discord

Discord is a communication platform designed for creating communities. The platform allows users to create and join servers, which are essentially chat rooms, and communicate with other users via text, voice, and video. Discord was founded in 2015 and has grown rapidly, with over 250 million registered users as of 2019. The company has raised $480 million in total funding.
Learn more about Discord
Size
800 employees
Industry
Founded
2012

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