Data Scientist, Amazon Music
Amazon.com
Amazon Music is an immersive audio entertainment service that deepens connections between fans, artists, and creators. From personalized music playlists to exclusive podcasts, concert livestreams to artist merch, Amazon Music is innovating at some of the most exciting intersections of music and culture. We offer experiences that serve all listeners with our different tiers of service: Prime members get access to all the music in shuffle mode, and top ad-free podcasts, included with their membership; customers can upgrade to Amazon Music Unlimited for unlimited, on-demand access to 100 million songs, including millions in HD, Ultra HD, and spatial audio; and anyone can listen for free by downloading the Amazon Music app or via Alexa-enabled devices. Join us for the opportunity to influence how Amazon Music engages fans, artists, and creators on a global scale. Learn more at https://www.amazon.com/music.
We are seeking a highly skilled and analytical Data Scientist. You will play an integral part in the Finance and marketing workstreams. You will have the opportunity to work with rich datasets together with the marketing and finance managers. This role will focus on developing and implementing causal and econometric models for financials and marketing effectiveness and inform strategic decision-making as well as financial planning. This role is suitable for candidates with strong background in causal inference, statistical analysis, and data-driven problem-solving, with the ability to translate complex data into actionable insights.
Key job responsibilities
Develop Causal Models
Design, build, and validate causal models to evaluate the impact of marketing campaigns and initiatives. Leverage advanced statistical methods to identify and quantify causal relationships. Build forecasting models to predict business outcomes
Conduct Randomized Controlled Trials
Design and implement randomized controlled trials (RCTs) to rigorously test the effectiveness of marketing strategies. Ensure robust experimental design and proper execution to derive credible insights.
Statistical Analysis and Inference
Perform complex statistical analyses to interpret data from experiments and observational studies. Use statistical software and programming languages to analyze large datasets and extract meaningful patterns.
Data-Driven Decision Making
Collaborate with finance and marketing teams to provide data-driven recommendations. Present findings and insights to stakeholders in a clear and actionable manner.
Collaborative Problem Solving
Work closely with cross-functional teams, including marketing, finance, product, and engineering, to identify key business questions and develop analytical solutions. Foster a culture of data-informed decision-making across the organization.
Stay Current with Industry Trends
Keep abreast of the latest developments in data science, causal inference, forecasting and marketing analytics. Apply new methodologies and technologies to improve the accuracy and efficiency of marketing measurement.
Documentation and Reporting
Maintain comprehensive documentation of models, experiments, and analytical processes. Prepare reports and presentations that effectively communicate complex analyses to non-technical audiences.
We are seeking a highly skilled and analytical Data Scientist. You will play an integral part in the Finance and marketing workstreams. You will have the opportunity to work with rich datasets together with the marketing and finance managers. This role will focus on developing and implementing causal and econometric models for financials and marketing effectiveness and inform strategic decision-making as well as financial planning. This role is suitable for candidates with strong background in causal inference, statistical analysis, and data-driven problem-solving, with the ability to translate complex data into actionable insights.
Key job responsibilities
Develop Causal Models
Design, build, and validate causal models to evaluate the impact of marketing campaigns and initiatives. Leverage advanced statistical methods to identify and quantify causal relationships. Build forecasting models to predict business outcomes
Conduct Randomized Controlled Trials
Design and implement randomized controlled trials (RCTs) to rigorously test the effectiveness of marketing strategies. Ensure robust experimental design and proper execution to derive credible insights.
Statistical Analysis and Inference
Perform complex statistical analyses to interpret data from experiments and observational studies. Use statistical software and programming languages to analyze large datasets and extract meaningful patterns.
Data-Driven Decision Making
Collaborate with finance and marketing teams to provide data-driven recommendations. Present findings and insights to stakeholders in a clear and actionable manner.
Collaborative Problem Solving
Work closely with cross-functional teams, including marketing, finance, product, and engineering, to identify key business questions and develop analytical solutions. Foster a culture of data-informed decision-making across the organization.
Stay Current with Industry Trends
Keep abreast of the latest developments in data science, causal inference, forecasting and marketing analytics. Apply new methodologies and technologies to improve the accuracy and efficiency of marketing measurement.
Documentation and Reporting
Maintain comprehensive documentation of models, experiments, and analytical processes. Prepare reports and presentations that effectively communicate complex analyses to non-technical audiences.
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