AI summary
As an Analyst in Credit Risk Scoring, you will support the development and monitoring of credit risk scorecards through analytics and statistical analysis, providing insights that impact risk management and business decisions.
Job Description
The Analyst, Credit Risk Scoring supports the development, monitoring, validation, and optimization of credit risk, fraud, and account management scorecards used throughout the customer lifecycle. Through portfolio analytics, model performance monitoring, customer segmentation, and statistical analysis, the analyst helps generate insights and recommendations that support scorecard strategy, model governance, risk management, and business decision-making. The role provides exposure to predictive analytics, credit scoring methodologies, machine learning concepts, and decision science within a regulated financial services environment.
Responsibilities
The Core Responsibilities
Requirements
Let's Talk About You
- Bachelor's degree in quantitative discipline such as Statistics, Mathematics, Engineering, Computer Science, Data Science, Physics, Economics, or another STEM-related field.
- 0 to 5 years of experience in data analytics, business analytics, risk analytics, financial services, consulting, or a related quantitative field. New graduates with strong technical and analytical capabilities are encouraged to apply.
- Strong technical proficiency in SQL and Python, with demonstrated ability to manipulate, analyze, and interpret large datasets.
- Strong analytical and problem-solving skills with the ability to translate data into meaningful insights and recommendations.
- Excellent attention to detail and commitment to data quality and accuracy.
- Effective written and verbal communication skills, with the ability to explain analytical findings to both technical and non-technical audiences.
- Demonstrated ability to learn quickly, adapt to changing priorities, and work effectively in a fast-paced environment.
- Experience with data visualization tools, cloud-based analytics platforms, machine learning, or statistical modelling is considered an asset.
- Strong Microsoft Office skills, particularly Excel and PowerPoint.
- Curiosity, initiative, and a willingness to develop expertise in credit risk, fraud prevention, customer acquisition, and financial services analytics.
About the job
- Posted on
- Sep 24, 2026
- Job type
- Full-time
- Location
- TorontoHybrid
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