Analyst-Data Science

American Express

Singapore

On-site

SGD 120,000 - 180,000

Full time

26 hours ago
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Job summary

American Express is seeking a Decision Science leader to blend business, technical, and industry-standard methodologies to develop analyses, models, and algorithms powering our customers’ digital experiences. The team handles enterprise risks across the customer lifecycle for consumer and commercial segments globally.

Responsibilities include building ML models, deriving behavioral insights, and collaborating with product, tech, and business partners to deploy predictive solutions in a Big Data

Qualifications

  • Masters in a quantitative field (Computer Science, Statistics, Mathematics, Physics, OR, etc.) or MBA with hands-on analytics expertise.
  • Proficiency in Python, R (or equivalent) and SQL; knowledge of SAS is a plus.

Responsibilities

  • Build reports and develop machine learning models and algorithms to improve digital customer experiences.
  • Collaborate with product owners to redefine product design using data-driven insights.
  • Partner with tech teams to test, implement and deploy modeling solutions to production.

Skills

Python
R
SQL
Big data
Data visualization
Communication

Education

Master's degree in a quantitative field

Tools

Hive
SAS

Job description

Job Description Decision Science colleagues will serve as a key member of the Credit and Fraud Risk organization. We seek a thought-leader and a problem-solver who can blend business, technical, and industry standard methodologies when it comes to developing the analyses, models, and algorithms that power our customers’ digital experiences. This critical team is responsible for handling enterprise risks throughout the customer lifecycle, across our consumer and commercial businesses, and across all our global products. We develop industry-first data capabilities, build profitable decision-making frameworks, create machine learning-powered predictive models, and improve customer servicing strategies.

Job Description Decision Science colleagues will serve as a key member of the Credit and Fraud Risk organization. We seek a thought-leader and a problem-solver who can blend business, technical, and industry standard methodologies when it comes to developing the analyses, models, and algorithms that power our customers’ digital experiences. This critical team is responsible for handling enterprise risks throughout the customer lifecycle, across our consumer and commercial businesses, and across all our global products. We develop industry-first data capabilities, build profitable decision-making frameworks, create machine learning-powered predictive models, and improve customer servicing strategies. Our Decision Science teams use industry leading modeling and AI practices to predict customer behavior. We develop, deploy and validate predictive models and support the use of models in economic logic to enable profitable decisions across credit, fraud, marketing and servicing optimization engines. Responsibilities

  • Build everything from basic reports to advanced machine learning models and algos to drive improvements to our customer’s online and mobile app experiences.
  • Work with product owners to redefine the product and content design with a data-driven approach
  • Collaborate with tech partners to test, implement and deploy modeling solutions to production system
  • Develop insights into customer behavior and introduce new approaches to transform complex behavioral data into useful information
  • Maximize the power of closed loop through Amex network to make decisions more intelligent and relevant
  • Work with extensive amounts of digital data (Web, App, API) , External data and sophisticated tools in an industry leading Big Data environment.
  • Innovate with a focus on developing newer and better approaches using big data & machine learning solutions
Qualifications
  • Masters in a quantitative field (Computer Science, Statistics, Mathematics, Physics, Operation Research and etc.) or Masters in Business Administration with hands-on experience using sophisticated analytical and machine learning techniques.
  • Expertise in an analytical language (Python, R or the equivalent), and experience with databases (Hive, SQL, or the equivalent). Knowledge of SAS is a plus but not required.
  • Deep understanding of machine learning/statistical algorithms such as deep learning and boosting. Experience with data visualization is a plus
  • Proven ability to frame business problems into mathematical programming problems, leverage external thinking and tools (from academia and/or other industries) to engineer a solution and deliver business insights.
  • Ability to work effectively in a team environment
  • Independent thinker who’s organized, has great attention to detail, and can multitask
  • Strong communication skills
  • Preferably 1-2 year of experience in AI/ML or Data Analytics
  • Ability to learn quickly and work independently with sophisticated, unstructured initiatives
  • Ability to integrate with cross-functional business partners worldwide
  • Proficient in presentation tools, including Excel and PowerPoint
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