Bloomberg

Senior Data Management Professional - Data Engineering - Corporate Actions

Bloomberg$110K — $190K *
Finance & Insurance
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's or Master's Degree in a quantitative field; Computer Science, Data Engineering, Information Systems or similar
  • 3+ years in Data Engineering or technical Data Management with experience in ETL processes
  • Expertise in Python and SQL/NoSQL database engineering
  • Experience with AI, LLMs, and Machine Learning for data processing
  • Familiarity with modern data tech stacks including workflow orchestration and distributed computing
  • Strong data modeling skills tailored for analytical capacity
  • Excellent problem-solving and communication skills for diverse audiences

Responsibilities

  • Design and optimize scalable data pipelines for high-volume financial data
  • Build robust data architectures and frameworks for data processing
  • Utilize AI and machine learning for data extraction and normalization
  • Implement Human-in-the-Loop workflows for data quality management
  • Create monitoring solutions for data integrity and operational performance
  • Collaborate with cross-functional teams to deliver high-quality data solutions

Benefits

  • Comprehensive benefits plan including medical, dental, and vision coverage
  • 401(k) plan with company matching
  • Short-term and long-term disability benefits
  • Paid holidays and time off
  • Life insurance and wellness programs
Full Job Description
Description & Requirements

Our team is responsible for the end-to-end data management of equity corporate actions data (including dividends, stock splits, and rights offerings) as well as equities reference data to offer a comprehensive product offering for our internal and external partners such as Enterprise Data, Indices and News. Multi-functional collaboration, deep domain knowledge, thoughtful automation, and data management expertise are paramount for our ability to continuously deliver high quality data to our rapidly growing client base. Equity Corporate Actions and Reference data serve as foundational building blocks across our overall offering, supporting critical workflows for hundreds of thousands of financial market professionals across North America and global capital markets.

The Role:

We are seeking a highly motivated, hands-on Senior Data Management Professional (DMP) - Data Engineering based in Princeton, NJ, to drive the technical evolution of our Equity Corporate Actions data products. In this role, you will act as a technical leader, navigating ambiguity to solve complex data challenges and engineer scalable, production-ready solutions.

This role is heavily focused on hands-on data engineering and the practical application of AI/LLMs for automated data extraction, validation and transformation to enterprise grade data model. You will design, build, and maintain high-throughput ETL pipelines, architect robust data models, and deploy intelligent automation frameworks to ingest and parse structured and unstructured financial data at scale.

We'll trust you to:

  • Design, build, and optimize scalable data pipelines to ingest, transform, and deliver high-volume financial data using Python, SQL, and modern enterprise data technologies, including workflow orchestration, distributed processing, messaging frameworks, and cloud-based data platforms.
  • Develop robust data architectures and automated ingestion frameworks that support structured and unstructured data sources, enabling scalable, high-performance data processing, schema design, and seamless interoperability across downstream systems.
  • Leverage AI, Large Language Models (LLMs), NLP, and machine learning to extract, normalize, and enrich Corporate Actions data (e.g., dividends, stock splits, rights offerings) from issuer filings, regulatory disclosures, news, press releases, exchange feeds, and other complex data sources.
  • Implement intelligent Human-in-the-Loop (HITL) workflows and data quality frameworks that combine AI-driven extraction with automated validation, business rules, statistical methods, and exception management to maximize accuracy, completeness, and operational efficiency.
  • Develop monitoring, reporting, and observability solutions by creating data quality dashboards, pipeline health metrics, and SLA monitoring capabilities that provide visibility into data integrity, processing performance, and operational effectiveness.
  • Partner cross-functionally with Product, Engineering, Data Science, and business stakeholders to design scalable data solutions, standardize engineering best practices, and deliver high-quality data products that support trading, analytics, and client-facing applications.


You'll need to have:

  • Bachelor's Degree or Master's Degree in Computer Science, Data Engineering, Information Systems, Quantitative Finance, or an equivalent quantitative discipline.
  • 3+ years of hands-on experience in a Data Engineering or technical Data Management role, with a proven track record of building scalable ETL/ELT pipelines in a production environment.
  • Advanced technical proficiency in Python (Pandas, PySpark, or standard data manipulation libraries) and complex SQL/NoSQL database engineering.
  • Hands-on experience applying AI/LLMs and Machine Learning (e.g., LangChain, LlamaIndex, OpenAI APIs, Hugging Face, or custom NLP models) for structured/unstructured document processing and automated information extraction.
  • Demonstrated experience with modern data tech stacks, including workflow orchestration engines, message streaming platforms, distributed computing frameworks, and object storage systems.
  • Strong data modeling and schema design skills, with experience creating structures optimized for analytical capabilities.
  • Exceptional problem-solving abilities, numerical proficiency, high attention to detail, and strong communication skills to present technical concepts to diverse stakeholders.


We'd love to see:

  • Direct experience ingesting, normalizing, and processing exchange-disseminated US Equity Corporate Actions data (e.g., dividends, stock splits, rights offerings) and equity reference data.
  • Industry certifications such as Certified Data Management Professional (CDMP) or Data Capability Assessment Model (DCAM).
  • Experience designing Human-in-the-Loop operational tooling and exception management workflows.
  • Familiarity with Agile methodologies, backlog management, and modern data governance frameworks.


If this sounds like you:

Apply! If you think we're a good match. We'll get in touch to let you know the next steps!

Salary Range = 110,000 - 190,000 USD Annual + Benefits + Bonus

The referenced salary range is based on the Company's good faith belief at the time of posting. Actual compensation may vary based on factors such as geographic location, work experience, market conditions, education/training and skill level.

We offer one of the most comprehensive and generous benefits plans available and offer a range of total rewards that may include merit increases, incentive compensation (exempt roles only), paid holidays, paid time off, medical, dental, vision, short and long term disability benefits, 401(k) +match, life insurance, and various wellness programs, among others. The Company does not provide benefits directly to contingent workers/contractors and interns.

About Bloomberg

Bloomberg L.P. is a privately held financial, software, data, and media company headquartered in Midtown Manhattan, New York City. It was founded by Michael Bloomberg in 1981, with the help of Thomas Secunda, Duncan MacMillan, Charles Zegar, and a 12% ownership investment by Merrill Lynch. Bloomberg L.P. provides financial software tools and enterprise applications such as analytics and equity trading platform, data services, and news to financial companies and organizations through the Bloomberg Terminal (via its Bloomberg Professional Service), its core revenue-generating product. Bloomberg L.P. also includes a wire service (Bloomberg News), a global television network (Bloomberg Television), digital websites, a radio station (WBBR), subscription-only newsletters, and three magazines: Bloomberg Businessweek, Bloomberg Markets, and Bloomberg Pursuits.
Learn more about Bloomberg
Size
20,000 employees
Industry
Founded
1981

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