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Junior Data Scientist | Financial Services

Why Hiring
Department:Data Analysis
Type:REMOTE
Region:USA
Location:United States
Experience:Entry Level
Skills:
PYTHONSQLSTATISTICAL ANALYSISMACHINE LEARNINGEXPLORATORY DATA ANALYSISDATA VISUALIZATIONPREDICTIVE MODELINGFORECASTINGRISK ANALYTICSFRAUD DETECTIONCUSTOMER ANALYTICSBUSINESS INTELLIGENCE
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Job Description

Posted on: August 25, 2026

Company Description

  • This position is listed on behalf of a partner company, which manages all applications and next steps.
  • Our partner is looking for a Junior Data Scientist to join their remote team and support data-driven decision-making across Financial Services, FinTech, Artificial Intelligence (AI), Machine Learning (ML), Risk Analytics, Customer Analytics, and Business Intelligence.
  • The role is designed for an early-career data professional who is passionate about using data to solve real-world financial and business problems. The Junior Data Scientist will work with structured and unstructured datasets, develop analytical and machine learning solutions, identify patterns and trends, and collaborate with cross-functional teams to turn data into actionable insights.


Accountabilities

The Junior Data Scientist will work closely with Data Science, Engineering, Product, Risk, Finance, and Business teams to develop data-driven solutions and support strategic initiatives.


Key responsibilities include:

  • Analyze structured and unstructured financial and business data using Python, SQL, and statistical methods
  • Perform Exploratory Data Analysis (EDA) to identify trends, patterns, anomalies, and business opportunities
  • Develop and evaluate Machine Learning (ML) models for prediction, classification, segmentation, and forecasting
  • Support financial risk analytics, fraud detection, customer analytics, and operational analytics initiatives
  • Build data visualizations, dashboards, reports, and KPIs to communicate analytical findings
  • Perform statistical analysis, hypothesis testing, and experimentation
  • Assist with predictive modeling and forecasting projects
  • Identify patterns in customer behavior, transactions, financial performance, and operational data
  • Support Artificial Intelligence (AI), automation, and data-driven product initiatives
  • Clean, transform, validate, and prepare datasets for analysis and modeling
  • Collaborate with Data Scientists, Data Engineers, Software Engineers, Product Managers, Risk Analysts, and business stakeholders
  • Communicate analytical findings and recommendations to technical and non-technical audiences
  • Contribute to improving data quality, analytical workflows, documentation, and reporting processes


Requirements

  • Bachelor's degree in Computer Science, Data Science, Statistics, Mathematics, Economics, Engineering, Business Analytics, Information Systems, or a related quantitative field
  • 0–2 years of experience in Data Science, Data Analytics, Business Analytics, Machine Learning, or a related field
  • Strong foundational knowledge of Python and SQL
  • Understanding of Machine Learning concepts and common modeling techniques
  • Knowledge of statistics, probability, hypothesis testing, and experimental design
  • Experience performing Exploratory Data Analysis (EDA)
  • Familiarity with data visualization tools such as Tableau, Power BI, Looker, or similar platforms
  • Familiarity with pandas, NumPy, scikit-learn, or similar Python data science libraries
  • Strong analytical and problem-solving skills
  • Ability to work with large datasets and identify meaningful patterns
  • Strong written and verbal English communication skills
  • Ability to work independently and collaboratively in a remote environment


Preferred Qualifications

  • Internship, academic, bootcamp, or project experience in Data Science, Machine Learning, Analytics, or FinTech
  • Exposure to financial datasets, transaction data, credit risk, fraud detection, or customer analytics
  • Familiarity with Git and GitHub
  • Experience with Jupyter Notebook
  • Familiarity with cloud platforms such as AWS, Microsoft Azure, or Google Cloud Platform (GCP)
  • Exposure to BigQuery, Snowflake, Redshift, Databricks, or other modern data platforms
  • Experience with Tableau, Power BI, Looker, or similar BI tools
  • Exposure to Generative AI, Large Language Models (LLMs), or AI-powered applications
Originally posted on LinkedIn

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