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Bloomberg runs on data. Our products are fueled by powerful information. We combine data and context to paint the whole picture for our clients, around the clock from around the world. In Data, we are responsible for delivering this data, news, and analytics through innovative technology, quickly and accurately. We apply problem-solving skills to identify workflow efficiencies, implement technological solutions to enhance our systems, products, and processes, and provide support to our clients.
Our Team:
As a Data Product Owner on the Query enrichment team, you will be responsible for annotation program management to contribute to the development of generative AI systems. You will play a crucial role, in collaboration with product and engineering teams, to implement strategies to gather and scale evaluations and annotations to drive continuous improvements for these systems.
You will be responsible for the delivery of annotated datasets — ensuring it meets the current and emerging needs of Bloomberg clients, aligns with internal product goals and adheres to high standards of quality, transparency, and usability. You will be expected to contribute to codifying standards, working with stakeholders to align on expectations, ensuring consistent delivery and iterating on our work, such as project design, in order to optimize and scale.
What’s The Role:
As a member of the Query Enrichment team, you will help make Bloomberg’s GenAI capabilities smarter, faster, and more intuitive. Our work connects data science, natural language processing, and human judgment — enriching queries to ensure users receive the most accurate and relevant responses possible. We partner closely with other Data teams, as well as Product and Engineering to enhance the intelligence behind Bloomberg’s AI offering.
We’ll trust you to:
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Own and run key query enrichment initiatives, which are predominantly focused on annotation process management from build to execution. Contribute to the evolution of Bloomberg’s query enrichment processes by crafting scalable, quality-controlled annotation projects to train and evaluate LLM models and their output
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Applies technical acumen and product mindset to define and drive the strategic evolution of annotation projects, ensuring robust quality metrics are created and utilised to iterate on workflows and performance.
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Collaborate with partners to scope, evaluate, and refine data enrichment tasks. This includes creation of project guidelines, implementation of annotation protocols and providing relevant progress reports and feedback.
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Perform advanced business intelligence, metric analysis, and process automation.
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Develop and document reproducible analysis notebooks that clarify results and streamline stakeholder reporting.
You’ll need to have:
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At least 3 years of professional experience in information management, data analytics, or technical project coordination.
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Experience owning the end-to-end lifecycle of a data product, including design, delivery and measurement with a focus on ensuring data meets consumer needs and drives actionable outcomes.
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Ability to translate technical metrics into business insights for product stakeholders.
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Excellent problem-solving and analytical thinking skills with strong attention to detail.
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Proven track record of stakeholder relationship management, communication, and cross-team collaboration.
We’d love to see:
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Strong proficiency in Python (Pandas, Num Py, and data visualization libraries).
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Experience developing or managing annotation programs and training/evaluation datasets for ML or NLP models.
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Basic understanding of HTML, CSS, and JavaScript for maintaining task-presenter tools.
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Prior involvement with distributed data labeling operations.
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About Bloomberg

Bloomberg
PublicBloomberg provides financial software, data, and media services to financial professionals and institutions worldwide. The company operates Bloomberg Terminal, a computer software system that enables professionals to access real-time financial market data and trading tools.
10,001+
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Midtown Manhattan
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4.0
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Pros
High compensation and competitive total compensation
Good work-life balance
Company stability and job security
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Slow career progression and promotion speed
Management issues and micromanagement
Limited remote work flexibility
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Junior/L3
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Stock
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Bonus
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$291,678
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14 interviews
Difficulty
2.9
/ 5
Duration
14-28 weeks
Offer Rate
21%
Experience
Positive 50%
Neutral 29%
Negative 21%
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1
Application Review
2
Recruiter Screen
3
Technical Phone Screen
4
Technical Rounds/Superday
5
Virtual/Onsite Interviews
6
Final Decision
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