Media Radar

Senior Data Engineer

Media Radar$120K — $150K *
US-AnywhereRemote in United States
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8+ years in data engineering / ETL with experience in architecting and building data platforms.
  • Proficient with AI coding tools like GitHub Copilot and skilled in prompt-based development.
  • Expert-level SQL and RDBMS skills, specifically in SQL Server and Postgres.
  • Hands-on experience with open-source tools like ClickHouse and dbt.
  • Strong AWS experience as part of migration from Azure Databricks.
  • Demonstrated ability to prototype and evaluate new technologies independently.
  • Strong proficiency in Python for building and automating data pipelines.

Responsibilities

  • Lead and grow a distributed team of data engineers across North America and India.
  • Champion AI-assisted development and establish best practices for the team.
  • Build proofs-of-concept to validate new tools and technologies.
  • Shape the technical vision for ETL and data platforms, balancing flexibility and cost.
  • Drive migration towards a more open and flexible data stack.
  • Design, build, and optimize robust ETL pipelines for data movement and transformation.
  • Master upstream and downstream systems for seamless data delivery.

Benefits

  • Medical, Dental & Vision Insurance
  • 401k with Company Match
  • Flexible PTO
  • Commuter Benefits
  • Gym Discounts
  • Summer Fridays
Full Job Description
We are looking for a highly technical, hands-on Senior Data Engineer to drive the evolution of our data delivery platform while leading a team of data engineers. This is a player-coach role: you will architect our next-generation data stack, build proofs-of-concept (POCs), and prove out new technologies before we commit to them at scale - and you will also manage and grow a team of engineers who report directly to you. You will partner closely with engineering leadership to shape the technical direction of our pipelines while staying hands-on in the systems yourself

We are deliberately moving away from a locked-in, vendor-heavy stack (e.g., Azure Databricks) toward a flexible, largely open-source architecture that keeps our options open. We also expect our engineers to work in a modern, AI-assisted way - using AI coding tools and prompt-based workflows to move faster without compromising quality. You should be energized by evaluating tools, building POCs, and making pragmatic, evidence-based decisions about what we adopt next. This is a build-and-prove role - you are expected to write code, design schemas, profile queries, and get into the details to understand the "how" and "why" behind every pipeline, while also mentoring your team to do the same.

Requirements
  • Team Leadership & People Management: Lead, manage, and grow a distributed team of data engineers (across North America and India) who report directly to you.
  • AI-Assisted Development: Champion the use of AI coding assistants (e.g., GitHub Copilot, Cursor, Claude) and prompt-based development to accelerate prototyping, code generation, refactoring, testing, and documentation. Establish best practices, guardrails, and review standards so the team uses these tools effectively and safely.
  • Hands-On POCs & Prototyping: Personally build proofs-of-concept to validate new tools and patterns (e.g., ClickHouse, dbt, open-source orchestration and pipeline frameworks) before broader rollout, and translate the results into clear recommendations.
  • Tech Stack Strategy & Architecture: Help shape the technical vision for our ETL and data platform. Evaluate, prototype, and recommend the technologies that will carry us forward, balancing flexibility, cost, performance, and avoiding vendor lock-in.
  • Platform Modernization: Drive the hands-on migration away from Azure Databricks toward a more open, flexible stack, minimizing disruption to our high-volume daily data delivery.
  • Build & Own Pipelines: Design, build, and optimize robust ETL pipelines that move and transform millions of daily data points reliably and efficiently.
  • Deep System Integration: Master all systems upstream and downstream of your area, from ingestion through to client-facing platforms, to ensure seamless, high-quality, end-to-end data delivery.
  • Operational Excellence: Establish testing frameworks, QA plans, observability, and CI/CD practices that guarantee data integrity at scale.
  • Technical Leadership Through Influence: Set technical standards and raise the bar across a distributed team (North America and India) through design guidance, code reviews, and mentorship - leading by expertise rather than direct people management.
  • Domain Mastery: Rapidly learn the nuances of the Advertising and Market Research domain to translate business needs into robust technical requirements.


What You'll Bring (Qualifications)
  • Experience: 8+ years in data engineering / ETL, with a strong track record as a hands-on engineer who has architected and built data platforms (Principal-level candidates will bring deeper architectural and cross-team impact).
  • AI-Assisted Engineering: Hands-on experience using AI coding tools (e.g., GitHub Copilot, Cursor, Claude, or similar) and strong prompt-based development skills, with good judgment about where these tools help and where human review is essential.
  • Core Databases: Expert-level SQL and RDBMS skills with deep, hands-on experience in SQL Server and Postgres (schema design, performance tuning, complex query optimization, root-cause analysis).
  • Modern & Open-Source Stack: Hands-on experience with technologies such as ClickHouse, dbt, and open-source data pipeline / orchestration tools (e.g., Airflow, Dagster, or similar), with the judgment to choose the right tool for the job.
  • Cloud: Strong, hands-on AWS experience is required, as we are standardizing on AWS as we move off Azure Databricks.
  • POC & Evaluation Mindset: Demonstrated ability to independently prototype, benchmark, and evaluate new technologies and make pragmatic adoption decisions.
  • Programming: Strong proficiency in Python (or similar) for building and automating data pipelines.
  • Education: Bachelor's or Master's degree in Computer Science, Engineering, or a related field.
Bonus Points (Nice to Haves)
  • Domain Expertise: Previous experience in Advertising, Media, or Market Research.
  • Infrastructure Knowledge: Familiarity with containerization (Docker, Kubernetes) and infrastructure-as-code.
  • Streaming & Real-Time: Experience with streaming/real-time data technologies (e.g., Kafka).

Benefits

In addition to career progression, training and development, and an excellent work/life balance, future Radarians can expect a great benefits package that includes:
  • Medical, Dental & Vision Insurance
  • 401k with Company Match
  • Flexible PTO
  • Commuter Benefits
  • Gym Discounts
  • Summer Fridays

About Media Radar

MediaRadar is a cloud-based ad sales information service. It provides advertising sales intelligence to media companies and ad tech firms. MediaRadar’s software-as-a-service (SaaS) tool allows sales teams to quickly identify the best prospects, build accurate media plans, and increase revenue. The company was founded in 2007 by Todd Krizelman and Jesse Keller. MediaRadar is headquartered in New York City and has offices in San Francisco, Chicago, and Bentonville, Arkansas.
Learn more about Media Radar
Size
100 employees
Industry
Founded
2006

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