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AI Data Intelligence Leader WW Channel Sales
Apple
- Austin, Texas, United States
- Austin, Texas, United States
Über
Own the product vision and roadmap for CSO's decision intelligence platform — spanning predictive coverage, experimentation & uplift, anomaly detection, and proactive automated insights Define the ML model portfolio: predictive coverage (live and scaling globally), staffing optimization, causal uplift estimation, and anomaly detection — from prototype through production Define the framework for model and agent autonomy: which decisions they make independently, which they recommend, and how human feedback loops improve quality over time Define the requirements, contracts, and quality standards for the unified data management system — a structured data foundation spanning all global sales programs that serves both ML models and human decision-makers Partner with the dedicated data engineering team to design and prioritize data pipelines that serve real-time decision loops and batch analytical workloads, with clear contracts for freshness, completeness, and provenance Establish data quality as a safety concern — when models and agents act autonomously on data, bad data produces wrong decisions at scale. Define observability, lineage, and automated drift detection requirements for the data engineering team to implement Build the global experiments library and design workflow — enabling program teams to run A/B tests, measure causal uplift, and make investment decisions based on evidence Establish measurement frameworks for model quality: accuracy, calibration, false positive rates, and the rate at which human overrides indicate improvement opportunities Lead a team of data scientists — building the culture and capability to ship ML- powered decision products at Apple's quality bar Partner with the data engineering team to translate model requirements into pipeline priorities, data contracts, and quality SLAs — you define what data is needed and to what standard; they build and operate the pipelines Partner with the full-stack development team when product surfaces are needed — dashboards, interactive tools, or user-facing features that go beyond what agents deliver autonomously Drive quarterly data prioritization with program owners — maintaining a minimalist, high-integrity data architecture that is technology-agnostic and systematically updatable Partner with GEO teams to scale capabilities globally, and with cross-functional partners (Finance, Product Marketing, IS&T, AVA Platform) to integrate with Apple's broader technology ecosystem
Minimum Qualifications
15+ years in data science, ML, or AI product leadership, with 5+ years managing technical teams Experience owning ML model portfolios in production — predictive models, experimentation systems, or decision intelligence products with measurable business outcomes Strong understanding of production data systems (Spark, Databricks, Kafka, Airflow, Snowflake, or equivalent) — sufficient to define requirements, set quality contracts, and partner effectively with a data engineering team Strong fluency in SQL, Python, and cloud data platforms (GCP/AWS) Understanding of how AI agents and LLMs consume data: retrieval patterns, context engineering, freshness requirements, and quality guarantees needed for autonomous decision making Track record of treating data quality as a product feature, not a cleanup task Proven ability to lead through influence across teams you don't directly manage — especially data engineering and product development teams Proven ability to translate between technical teams and senior leadership — making complex AI and data concepts concrete and decision-relevant BS/MS in Computer Science, Data Engineering, or related discipline
Preferred Qualifications
Experience with predictive analytics in retail, channel, or field operations — coverage models, staffing optimization, or demand forecasting Background in causal inference, experimentation platforms, or uplift modeling Experience building or leading agentic AI systems in production Experience scaling ML products globally across multiple markets with varying data availability Understanding of data privacy and governance in contexts where AI systems autonomously access and act on business data A design-minded sensibility — valuing simplicity, trust, and user empathy as much as model performance
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Sprachkenntnisse
- English
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