Finance AI Data Scientist

Binance

Hong Kong

Remote

HKD 900,000 - 1,300,000

Full time

8 days ago
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Benefits offered by this job

Work-from-home
Global team
Competitive salary
Career growth

Job summary

Binance is seeking a Financial AI and Equity Research specialist to design data algorithms, retrieval, and knowledge pipelines for user-facing financial queries.

You will own the full lifecycle from problem definition and data development to model training and production evaluation, collaborating with Financial AI Engineers to deploy robust systems at scale.

Qualifications

  • Experience in financial data, brokerage, trading platforms, research institutions, wealth management, or fintech-related algorithm development.
  • Experience in extracting, linking, event detection, or quality evaluation for financial content such as earnings reports, announcements, research reports, and news.
  • Experience in financial large model post-training, reinforcement learning, knowledge graphs, multimodal document understanding, or data agent optimization.
  • Experience with active learning, weak supervision, human feedback loops, or large-scale data labeling and evaluation systems.
  • Experience in cross-market or cross-language model transfer, or in conducting independent evaluation and calibration for different markets.

Responsibilities

  • Identify high-value financial data algorithm problems worth building in-house and evaluate approaches, including external data sources, rule-based processing, traditional models, and LLMs.
  • Design, train, evaluate, and optimize financial data and knowledge algorithms in production (query understanding, information extraction, ranking, timeliness).
  • Develop multi-channel retrieval, relevance modeling, and financial ranking that balance relevance, timeliness, and source signals.
  • Build training datasets, labeling systems, and evaluation benchmarks for market data, fundamentals, earnings, and news, addressing bias and changes.

Skills

Financial AI
NLP & ML
Reinforcement learning
Knowledge graphs
Data labeling & active learning
Cross-market transfer
Information extraction
Evaluation frameworks

Tools

Large language models
NLP frameworks
Graph databases
Retrieval-augmented generation

Job description

Binance is a leading global blockchain ecosystem behind the world’s largest cryptocurrency exchange by trading volume and registered users. We are trusted by 300+ million people in 100+ countries for our industry-leading security, user fund transparency, trading engine speed, deep liquidity, and an unmatched portfolio of digital-asset products. Binance offerings range from trading and finance to education, research, payments, institutional services, Web3 features, and more. We leverage the power of digital assets and blockchain to build an inclusive financial ecosystem to advance the freedom of money and improve financial access for people around the world.

You will focus on user-facing financial AI and equity research scenarios, identifying and developing data and knowledge algorithms that are strategically valuable for Binance to build over the long term. By combining large language models, natural language processing, machine learning, and reinforcement learning, you will enable the system to better understand user queries, recognize financial entities and temporal information, retrieve timely and relevant information, and generate results that are measurable and continuously optimizable. You will own the full lifecycle, from problem definition and data development to model training and production evaluation.

Responsibilities
  • Identify high-value financial data algorithm problems that are worth building in-house, and evaluate the effectiveness, cost, and long-term maintainability of different approaches, including external data sources, rule-based processing, traditional models, and large language model solutions.
  • Design, train, evaluate, and optimize financial data and knowledge algorithms in production, covering areas such as user query understanding, document understanding, information extraction, entity recognition and linking, event detection, timeliness assessment, classification and tagging, deduplication and consolidation, and quality scoring.
  • Develop multi-channel retrieval, relevance modeling, and financial ranking algorithms that dynamically balance relevance, timeliness, source authority, popularity, content quality, and other domain-specific financial signals based on user queries.
  • Build training datasets, labeling systems, and evaluation benchmarks for market data, fundamentals, earnings reports, announcements, news, research reports, and licensed investment research data, while addressing sample bias, label noise, source conflicts, and market changes.
  • Select and optimize the appropriate methods for each task, including large language models, NLP models, multimodal models, graph algorithms, traditional machine learning, or rule-based approaches, balancing accuracy, recall, explainability, timeliness, and cost. Collaborate with Financial AI Engineers to integrate algorithms into a unified knowledge processing and retrieval pipeline and deploy them reliably into production.
  • Apply supervised fine-tuning, reinforcement learning, preference optimization, active learning, or semi-supervised learning, leveraging expert feedback and production data to continuously improve data processing models and financial data agents.
  • Establish both offline and online evaluation frameworks to measure accuracy, recall, ranking quality, timeliness, irrelevant information ratio, coverage, consistency, and cross-market generalization. Evaluate the authority relationship between tool usage and retrieval-augmented generation, ensure that historical evidence does not override updated facts, and attribute errors across data, retrieval, ranking, and model layers.
Requirements
  • Experience in financial data, brokerage, trading platforms, research institutions, wealth management, or fintech-related algorithm development.
  • Experience in extracting, linking, event detection, or quality evaluation for financial content such as earnings reports, announcements, research reports, and news.
  • Experience in financial large model post-training, reinforcement learning, knowledge graphs, multimodal document understanding, or data agent optimization.
  • Experience with active learning, weak supervision, human feedback loops, or large-scale data labeling and evaluation systems.
  • Experience in cross-market or cross-language model transfer, or in conducting independent evaluation and calibration for different markets.
Why Binance
  • Shape the future with the world’s leading blockchain ecosystem
  • Collaborate with world-class talent in a user-centric global organization with a flat structure
  • Tackle unique, fast-paced projects with autonomy in an innovative environment
  • Thrive in a results-driven workplace with opportunities for career growth and continuous learning
  • Competitive salary and company benefits
  • Work-from-home arrangement (the arrangement may vary depending on the work nature of the business team)

Binance is committed to being an equal opportunity employer. We believe that having a diverse workforce is fundamental to our success.

We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.

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