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Intuit Inc.

Senior Manager, Product Analytics (Mailchimp)

Intuit Inc., New York, New York, us, 10261


Intuit Mailchimp is seeking an experienced analytics manager to lead & scale one of our product analytics teams, reporting directly into our Group Manager of Product Analytics. We have an exciting opportunity to evolve and accelerate the way we leverage behavioral and transactional data to surface customer insights, build models to personalize small business customer experiences, and deliver awesome outcomes for our customers. This role will drive critical cross-functional strategies and will partner closely with product management, data engineering, sister analytics teams, data science, and other cross-functional partners. We’re looking for someone who has a high bar for quality, intends to do the right thing, and is driven by achieving and driving business outcomes. Responsibilities

Drive strategic thinking to optimize product and user experience efforts (inclusive of experimentation) for customer journeys, based on customer segments, lifecycle stages, and other critical customer attributes. Represent the analytics function on the cross-functional leadership team and provide/inspire data-driven change around end-to-end customer experiences to grow product usage, improve retention, and reduce churn. Develop and grow an exceptional team of data analysts and partner effectively with data engineers and data scientists; prioritize the team’s work to maximize effectiveness and impact both at the individual and team level. Promote a scientific and engineering mindset to analytics, uplevel the team on analytics engineering practices, and teach experimentation science and statistical modeling. Partner with cross-functional stakeholders to better understand our users and create a single, accurate view of a customer across businesses to make decisions about how best to acquire/retain them, segment, identify high potential value, and proactively interact with them. Lead the full cycle of iterative big data exploration, including hypothesis formulation, algorithm development, data cleansing, testing, insight generation/visualization, and action planning. Collect, analyze, and model available data to advance the product analytics space and build a broad understanding of the Mailchimp customers and relevant customer segments. Pursue data quality, troubleshoot data validation, and see issues to resolution. Provide guidance and support to business leaders and stakeholders on how best to harness available data in support of critical business needs and goals. Establish best practices including quality assurance, automation, code reviews, quality checks, and data alarms. Roll up your sleeves when needed to write or review code, develop models, or create data visualizations for our stakeholders. Foster an environment for continued team exploration and learning. Lead inclusively, by fostering Intuit’s values and cultivating an environment of diversity, inclusion, and belonging. Actively support our true north DEI goals and lead by example with all practices. Minimum Requirements

8+ years of experience working in web, product, marketing, or other related analytics fields. Ability to tell stories with data, educate effectively, and instill confidence, motivating stakeholders to act on recommendations. 3+ years working with customer data in product science, product analytics, customer analytics, customer insights, sales analytics, customer lifecycle marketing, or related field/function. Demonstrated ability to deeply analyze customer data to inform product, marketing, and sales decisions. 3-5 years' experience managing data analysts, business intelligence engineers, data scientists, or data engineers with a proven track record of building high-performing analytics and data science teams and developing successful analysts/data scientists. Strong product sense with a demonstrated ability to diagnose and solve real product problems. Solid modeling foundation is a plus, including hands-on expertise with data mining and statistical modeling techniques such as clustering, classification, regression, tree-based methods, neural nets, support vector machines, anomaly detection, and natural language processing. Experience with customer segmentation, data enrichment tools and technologies, and personalization at scale (preferably in a B2B context). Degree in engineering, computer science, information systems, or equivalent experience required; Masters/MBA preferred.

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