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Senior Quant Developer
Successfully
Req. VR-116626
We need a Senior Quant Developer to work for a leading investment bank client for the part of Trade Surveillance Team. Lead the design and development of advanced quantitative and AI-driven models for market abuse detection across multiple asset classes and trading venues. Drive the solutioning and delivery of large-scale surveillance systems in a global investment banking environment, leveraging Python, PySpark, big data technologies, and MS Copilot for model development, automation, and code quality. Play a pivotal role in communicating complex technical concepts through compelling storytelling, ensuring alignment, and understanding across business,compliance, and technology teams.
Architect and implement scalable AI/ML models (using MS Copilot, Python, PySpark, and other tools) for detecting market abuse patterns (e.g., spoofing, layering, insider trading)
across equities, fixed income, FX, and derivatives.
Collaborate closely with consultants, MAR monitoring teams, and technology stakeholders to gather requirements, share insights, and co-create innovative solutions.
Translate regulatory and business requirements into actionable technical designs, using storytelling to bridge gaps between technical and non-technical audiences.
Develop cross-venue monitoring solutions to aggregate, normalize, and analyze trading data from multiple exchanges and platforms using big data frameworks.
Design and optimize real-time and batch processing pipelines for large-scale market data ingestion and analysis.
Build statistical and machine learning models for anomaly detection, behavioral analytics, and alert generation.
Ensure solutions are compliant with global Market Abuse Regulations (MAR, MAD, MiFID II, Dodd-Frank, etc.).
Lead code reviews, mentor junior quants/developers, and establish best practices for model validation and software engineering, with a focus on AI-assisted development.
Integrate surveillance models with existing compliance platforms and workflow tools.
Conduct backtesting, scenario analysis, and performance benchmarking of surveillance models.
Document model logic, assumptions, and validation results for regulatory audits and internal governance.
Must have
Technical Skills:
7+ years of experience
Investment banking domain experience
Advanced AI/ML modelling (Python, PySpark, MS Copilot, kdb+/q, C++, Java)
Must be well versed with SQL and have hands on experience writing SQL (preferably Spark SQL) that is productionized (not ad-hoc queries) for at least 2-4 years
Familiarity with Cross-Product and Cross-Venue Surveillance Techniques particularly with vendors such as TradingHub, Steeleye, Nasdaq or NICE
Statistical analysis and anomaly detection
Large-scale data engineering and ETL pipeline development (Spark, Hadoop, or similar)
Market microstructure and trading strategy expertise
Experience with enterprise-grade surveillance systems in banking.
Integration of cross-product and cross-venue data sources
Regulatory compliance (MAR, MAD, MiFID II, Dodd-Frank)
Code quality, version control, and best practices.
Soft Skills:
Strong storytelling and communication for technical and non-technical audiences
Collaboration with consultants, MAR monitoring teams, and technology stakeholders
Stakeholder management and requirements gathering
Leadership, mentoring, and team guidance
Problem-solving and critical thinking
Adaptability and continuous learning
Nice to have
Understanding of Financial Markets Asset Classes (FX, FI, Equities, Rates, Commodities & Credit), various trade types (OTC, exchange traded, Spot, Forward, Swap, Options) and related systems is a plus
Surveillance domain knowledge, regulations (MAR, MIFID, CAT, Dodd Frank) and related Systems knowledge is certainly a plus
Languages
English: C2 Proficient
Seniority
Senior
Bengaluru, India
Req. VR-116626
AI/ML
BCM Industry
05/09/2025
Req. VR-116626
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