Data Scientist

Mphasis

• $110K — $130K *
Finance & Insurance
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Strong knowledge of regression analysis and statistics.
  • Experience with Python, SQL, Big Data, Hadoop, and data visualization tools.
  • Ability to analyze large datasets and identify patterns.
  • Experience with root cause analysis and anomaly detection.
  • Strong communication and problem-solving skills.

Responsibilities

  • Build and validate regression models to explain data drift and variances.
  • Analyze mismatches between expected and actual results.
  • Identify root causes of defects and data quality issues.
  • Perform statistical testing and trend analysis.
  • Create dashboards, heat maps, and visualizations to monitor drift.
  • Develop predictive models to detect issues early.
  • Partner with business, QA, and development teams to prioritize fixes.
  • Present findings and recommendations to stakeholders.

Benefits

  • Collaborative environment with cross-functional teams.
  • Opportunity to work with advanced data tools and technologies.
  • Focus on innovative problem-solving and analytics.
  • Exposure to financial services and payments industries.
Full Job Description
Role description

Data Scientist - Regression Analysis

Role Summary

Analyze data to identify trends, detect variances, explain root causes, and support defect remediation

using statistical and regression analysis.

Key Responsibilities
• Build and validate regression models to explain data drift and variances.
• Analyze mismatches between expected and actual results.
• Identify root causes of defects and data quality issues.
• Perform statistical testing and trend analysis.
• Create dashboards, heat maps, and visualizations to monitor drift.
• Develop predictive models to detect issues early.
• Partner with business, QA, and development teams to prioritize fixes.
• Present findings and recommendations to stakeholders.

Required Skills
• Strong knowledge of regression analysis and statistics.
• Experience with Python, SQL, Big Data, Hadoop, and data visualization tools. Machine

learning experience is a plus.
• Ability to analyze large datasets and identify patterns.
• Experience with root cause analysis and anomaly detection.
• Strong communication and problem - solving skills.

Preferred Experience
• Financial services or payments experience.
• Data reconciliation and validation.
• Drift monitoring and predictive analytics.
• Power BI, Tableau, Spark, Snowflake, or Databric

Success Measures
• Faster defect diagnosis.
• Earlier detection of drift.
• Improved validation accuracy.
• Reduced manual analysis effort.

Ideal Candidate:

A data scientist who can use regression analysis, statistical modeling, and data visualization to detect

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