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As a Data Scientist at Oscilar, you will be responsible for developing and implementing advanced fraud detection models to protect our customers’ business from fraudulent activities. As an early member in the ML team you will have great impact in building out our ML stack.
Responsibilities:
Develop and implement advanced fraud detection models, leveraging machine learning and statistical techniques, to identify and prevent fraudulent activities across our platform.
Collaborate with cross-functional teams, including engineering, product, and operations, to design and implement fraud detection systems and processes.
Analyze large volumes of data to identify patterns, trends, and anomalies indicative of fraudulent behavior, and develop data-driven insights to improve fraud prevention strategies.
Evaluate the performance of existing fraud detection models and systems, and continuously optimize and update them to adapt to changing fraud trends and tactics.
Stay up-to-date with the latest trends and advancements in fraud detection, data science, and machine learning, and apply this knowledge to enhance our fraud prevention capabilities.
Communicate complex data analysis and model performance results to both technical and non-technical stakeholders, driving data-driven decision-making across the organization.
Ensure data privacy and security compliance in all aspects of fraud detection and data analysis.
Requirements:
3+ years of experience in data science, machine learning, or a related field, with a focus on fraud prevention and/or anti-money laundering.
Proficiency in Python.
Fluency in cloud development (AWS, GCP, Azure, etc.) and MLOps is a plus.
Strong knowledge of machine learning algorithms and statistical techniques, with a focus on their application in fraud detection.
Experience working with large datasets using distributed systems like Apache Spark and Dask, handling data-related challenges such as data cleaning, data quality, and data transformation and feature engineering at scale.
Excellent analytical and problem-solving skills, with the ability to derive actionable insights from complex data.
Strong communication skills, with the ability to explain complex concepts and findings to both technical and non-technical audiences.
Ability to work independently and collaboratively in a fast-paced, dynamic startup environment.
Preferred Qualifications:
Experience in the fintech, marketplaces, or financial services industry.
Knowledge of current fraud tactics and trends, as well as experience with fraud detection tools and systems.
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Oscilar
View Company ProfileOscilar is a premier, enterprise-grade risk decisioning platform engineered to orchestrate massive-scale financial security ecosystems and intelligent fraud defense workflows. Operating as a highly integrated artificial intelligence risk hub, the company eliminates the operational friction of traditional siloed underwriting and compliance by seamlessly deploying advanced machine learning telemetry, rigorous Anti-Money Laundering (AML) architectures, and cohesive cognitive identity frameworks. Moving beyond rigid legacy rules engines, Oscilar empowers global fintechs, digital banks, and elite financial institutions to dynamically synchronize their credit underwriting and risk mitigation with world-class automated execution. Under the hood, their sophisticated decisioning infrastructure natively handles complex onboarding data ingestion, instantaneous account takeover routing, and seamless transaction monitoring, ensuring frictionless compliance readiness and uncompromising financial security. What sets Oscilar apart is its uncompromising dedication to frictionless risk orchestration; by bridging the gap between cutting-edge generative AI and rigorous regulatory compliance, the platform empowers organizations to radically accelerate their risk assessment velocity, optimize transaction approval rates, and build an unassailable foundation for continuous commercial dominance in the modern financial technology landscape.
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