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Senior Quantitative Analytics Specialist @ Wells Fargo

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 Senior Quantitative Analytics Specialist

Job Description

About the Role:

CMoR operates in a fast-paced work environment with continuously changing policies and technologies. The successful candidate is expected to be self- motivated, require minimal supervision, and produce work that is consistent with CMoRs recognized high standards. Effective work will involve familiarity with source systems of record, analytical data and sampling plans, model replications, model performance assessments, and test model development as effective challenges to lines of business.It further requires strength in writing detailed standard analytical reports to ensure Wells Fargos compliance with governance policies and regulations.Each validation report will include assessments of the specific business, model purpose and history, the model methodology, data integrity, model development, performance, implementation, and monitoring.These documents are read by a broad audience, including auditors and regulators.

  • Senior Quantitative Analytics Specialistis an individual contributor role in the Decision Science and Artificial Intelligence (DSAI) Validation team within CMoR. In this role, the team member is responsible for validating and approving all marketing, retail credit scoring, commercial credit scoring, financial crimes, fair lending, and other artificial intelligence and machine-learning models.
  • An Senior Quantitative Analytics Specialistshould have a deep academic knowledge, broad based approach to solutioning business problems. He/she should approach the problem agnostic of analytic technique, tool or process. Ability to think outside the box and provide ensemble solutions should set them apart to be a high performing team member

Essential Skills:

  • 5-8 years of experience with minimum Masters/Phd in a quantitative field such as applied math, statistics, engineering, physics, accounting, finance, economics, econometrics, computer sciences, or business/social and behavioral sciences with a quantitative emphasis
  • Strong mathematical, statistical, analytical and computational skills
  • Strong communication skills for a variety of audiences (other technical staff, senior management and regulators) both verbally and in writing
  • Capability to multi-task and finish work within strict timelines and provide timely requests for information and follow-up questions
  • Ability to work independently on complex model validations from start to finish
  • Skill in managing relationships with key model stakeholders
  • Eagerness to contribute collaboratively on projects and discussions
  • Perpetual interest in learning something new, but being comfortable with not knowing the all the answers
  • Attention to detail in both analytics and documentation
  • Aptitude for synthesizing data to 'form a story' and align information to contrast/compare to industry perspective
  • Intellectually curious, who enjoy solving problems.

Desired Skills:

  • Hands on industry experience in building large scale end-to-end machine learning systems using a combination of big data tools and programming languages like Scala, Java and/or Python
  • Knowledge of parallel and distributed computing frameworks such as Hadoop, Spark, MPI, using GPUs
  • Experience in machine learning areas such as recommender systems, NLP, pattern recognition, predictive modeling, Artificial Intelligence.
  • Experience implementing machine learning algorithms such as support vector machines, decision trees, logistic regression, clustering, neural networks, graphical models etc
  • Data exploration and preparation using SAS, Spark, Python ,SQL or R or any statistical tool
  • Working experience in financial model validation team would be added advantage
  • Prepare detailed documentations for projects for both internal and external that complies regulatory and internal audit requirements
  • Keep updated with the latest in the Data Science community and leverage new capability for the bank
  • Knowledge of banking industry, terminologies and products in at least one of the LOB such as credit cards, mortgage, deposits, loans or wealth management etc.
  • Knowledge of any functional area such as risk, marketing, operations or supply chain in banking industry.
  • Instrumental in bringing new approaches to the table, create white papers and present in conferences

Job Classification

Industry: IT Services & Consulting
Functional Area: Data Science & Analytics,
Role Category: Business Intelligence & Analytics
Role: Business Intelligence & Analytics
Employement Type: Full time

Education

Under Graduation: Any Graduate
Post Graduation: MS/M.Sc(Science) in Maths, Physics, Statistics, Computers, MBA/PGDM in Any Specialization, MCA in Computers, M.A in Maths, Statistics, M.Com in Any Specialization, MCM in Computers and Management, M.Tech in Computers
Doctorate: Ph.D/Doctorate in Statistics, Physics, Computers, Maths, Economics

Contact Details:

Company: Wells Fargo
Address: .
Location(s): Bengaluru

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Keyskills:   SAS Spark Python Data Science Predictive Modeling Recommender Systems R Logistic Regression Banking Decision Trees Machine Learning SQL

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Wells Fargo

Wells Fargo & Company (NYSE: WFC) is a diversified, community- based financial services company with $1. 9 trillion in assets. Founded in 1852 and headquartered in San Francisco, Wells Fargo provides banking, insurance, investments, mortgage, and consumer and commercial finance through more ...