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Senior Data Engineering Manager

Job in New York, New York County, New York, 10261, USA
Listing for: Neura Market
Full Time position
Listed on 2026-07-26
Job specializations:
  • IT/Tech
    Data Engineering
Salary/Wage Range or Industry Benchmark: 129000 - 215000 USD Yearly USD 129000.00 215000.00 YEAR
Job Description & How to Apply Below
Location: New York

About Us:

Yipit Data is the leading market research and analytics firm for the disruptive economy and most recently raised 475M from The Carlyle Group at a valuation of over 1B. Every day, our proprietary technology analyzes billions of alternative data points to uncover actionable insights across sectors like software, AI, cloud, e-commerce, ride sharing, and payments.

Our data and research teams transform raw data into strategic intelligence, delivering accurate, timely, and deeply contextualized analysis that our customers—ranging from the world’s top investment funds to Fortune 500 companies—depend on to drive high-stakes decisions. From sourcing and licensing novel datasets to rigorous analysis and expert narrative framing, our teams ensure clients get not just data, but clarity and confidence.

We operate globally with offices in the US, APAC, and India. Our award-winning, people-centric culture—recognized by Inc. as a Best Workplace for three consecutive years—emphasizes transparency, ownership, and continuous mastery.

What It’s Like to Work at Yipit Data:

Yipit Data isn’t a place for coasting—it’s a launchpad for ambitious, impact-driven professionals.

From day one, you’ll take the lead on meaningful work, accelerate your growth, and gain exposure that shapes careers.

Why Top Talent Chooses Yipit Data:

  • Ownership That Matters:
    You’ll lead high-impact projects with real business outcomes
  • Rapid Growth:
    We compress years of learning into months
  • Merit Over Titles:
    Trust and responsibility are earned through execution, not tenure
  • Velocity with

    Purpose:

    We move fast, support each other, and aim high—always with purpose and intention

If your ambition is matched by your work ethic—and you're hungry for a place where growth, impact, and ownership are the norm—Yipit Data might be the opportunity you’ve been waiting for.

About The Role:

We are looking for a highly skilled Senior Data Engineering Manager to lead one of our data engineering teams. This is a hands-on player-coach role for someone who can develop engineers, guide technical architecture, and contribute directly to the systems that support our products, AI platforms, and customer-facing data feeds.

You will own critical central data pipelines built on large-scale alternative datasets, including transaction data, email receipt data, B2B spend data, and other third-party datasets. Your team will transform complex data into reliable, production-grade assets used by research analysts, product teams, and internal applications.

This role is ideal for an engineering leader who combines strong technical judgment, operational rigor, people leadership, and modern AI-assisted development practices. You should be comfortable using tools like Claude Code, Codex, Cursor, or similar systems to accelerate implementation, code review, testing, documentation, debugging, and technical exploration while maintaining a high bar for correctness, reliability, and production ownership.

What You’ll Own

You will lead the data engineering team responsible for building and scaling data systems for all of Yipit Data’s businesses, including:

  • Large scale data pipelines built for the public investor business units, corporate investor team, and/or private investor team
  • Production datasets and analytical models used in research workflows, applications, internal products, and customer-facing deliverables.
  • Architecting data flows and data models to support various business stakeholders use cases focusing on accuracy, timeliness, and reliability.
  • AI-ready analytical datasets designed with the structure, metadata, documentation, and business context needed for effective use by AI agents.
  • Data quality and observability frameworks, including validation checks, freshness monitoring, coverage monitoring, outlier detection, and automated QA controls.
  • Technical execution across Databricks, Airflow, SQL, PySpark, and related data infrastructure.
  • Operational excellence practices across documentation, incident response, monitoring, reliability, and production support.

What You’ll Do

  • Lead, coach, and develop a global team of data engineers while staying close to architecture, design, code reviews, debugging,…
Position Requirements
10+ Years work experience
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