J.P. Morgan
Data Domain Architect Analyst - Data Annotation, Finance
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Job Description
- Req#: 210480877
- Work on data labeling tool(s) and annotate data for machine learning models. Sift through structured and unstructured data; identify the right content and annotate with the right label.
- Collaborate with stakeholders including machine learning engineers, data scientists, data engineers and product managers across all of JPMorgan Chase's lines of businesses, such as Investment Bank, Commercial Bank, and Asset Management.
- Work on engagements from understanding the business objective through the data identification, annotation and validation.
- Comprehend the subtleties of language used in the financial industry. Conduct research and bring clarity in business definitions and concepts. Annotate the terms, phrases, and data as per the project requirement.
- Understand and define the relationship among entities.
- Validate model results from the business perspective and provide feedback for model improvement.
- Effectively communicate data annotation concepts, process and model results to both technical and business audiences. Break down ML annotation topics in a clear manner.
- Adapt to changes in guidelines, priorities and environments
- Transcribe verbatim audio recordings, single and multi-speaker of varying dialects and accents and identify relevant keywords and sentiment labels
- Exposure/working knowledge of prompt engineering
- Strong financial knowledge. Full-time masters in a business management (MBA) with finance specialization.
- 2-5 years of hands-on experience in data collection, analysis or research.
- Should be able to work both individually and collaboratively in teams, in order to achieve project goals.
- Must be curious, hardworking and detail-oriented, and motivated by complex analytical problems and interested in data analytics techniques.
- Interest in Machine learning and should be able to develop
- a working level domain knowledge on machine learning concepts
- an understanding of model scoring parameters such as precision, recall and f-score
- Experience in data extraction/collection form financial documents
- Experience with data annotation, labeling, entity disambiguation and data enrichment.
- Familiarity with industry standard annotation and labeling methods
- Exposure to voice translation services and tools
- Familiarity with Machine learning and AI paradigms such as text classification, entity recognition, information retrieval
The Machine Learning team at JPMorgan Chase combines cutting edge machine learning techniques with the company’s unique data assets to optimize all the business decisions we make. In this role, you will be part of our world-class machine learning team, and work on the collection, annotation and enrichment of data for machine learning models. Our work spans the company’s lines of business, with exceptional opportunities in each.
The successful candidate will work on multiple projects and provide data annotation services across a variety of data types including, but not limited to, text, chats, emails and audio. We expect the candidate to understand the business use-case and own the data annotation pipeline to go from the raw data to a reliable, annotated ground truth that can be used by sophisticated machine learning methods for banking applications such as risk assessment, trading models, customer relationship management, and pricing models.
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About the company
J.P. Morgan is a leader in financial services, offering solutions to clients in more than 100 countries with one of the most comprehensive global product platforms available. We have been helping our clients to do business and manage their wealth for more than 200 years. Our business has been built upon our core principle of putting our clients' interests first.