Senior Data Scientist
The Senior Data Scientist will play a key role in developing and operationalizing machine learning solutions across areas including risk, fraud, customer analytics, marketing, and portfolio management. The successful candidate will bring strong technical expertise across the full machine learning lifecycle and the ability to translate complex data insights into actionable business recommendations.
Responsibilities Lead the design, development, validation, deployment, and monitoring of machine learning and predictive analytics solutions. Build, optimize, and maintain production-grade models that drive business outcomes across risk, fraud detection, customer behavior, marketing analytics, and portfolio management. Perform exploratory data analysis, feature engineering, statistical analysis, and hypothesis testing to identify trends and actionable insights. Develop scalable analytics solutions using large structured and unstructured datasets. Translate complex analytical findings into clear recommendations for technical teams, business stakeholders, and leadership. Create dashboards, visualizations, and reporting solutions to communicate model performance, insights, and business impact. Partner with data engineering teams to define data requirements, improve data pipelines, and ensure data quality. Establish and promote best practices around machine learning development, MLOps, model governance, and analytics processes. Lead proof-of-concept initiatives evaluating emerging machine learning techniques and AI technologies. Own the complete model lifecycle, including feature engineering, training, validation, deployment, monitoring, retraining, and optimization. Mentor entry level data scientists through technical guidance, code reviews, and knowledge sharing. Provide technical leadership around modeling strategies, architecture decisions, and analytical methodologies.
Qualifications:
Required Qualifications 5+ years of experience developing and deploying machine learning and predictive analytics solutions. Strong hands-on experience with Python, SQL, and machine learning frameworks. Experience working with big data technologies including Spark, PySpark, and Databricks. Experience developing classification, regression, clustering, and predictive models using techniques such as Random Forest, XGBoost, Gradient Boosting, and related methods. Strong experience with feature engineering, model validation, and production model deployment. Experience with data visualization tools such as Tableau or similar platforms. Knowledge of MLOps practices, including model tracking, deployment workflows, and machine learning lifecycle management. Ability to communicate complex technical concepts effectively to both technical and non-technical audiences. Strong collaboration skills with experience partnering across engineering, product, and business teams.Compensation
$160,000.00-$180,000.00 YearlyAbout Us
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