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Apple AI Data Scientist 
United States, California, Cupertino 
999965890

Today
In this role, you will be a core technical contributor building models and intelligence layers that power our AI agents, insights engines, and GenAI-enhanced platforms. You’ll develop robust ML pipelines, design evaluators for LLM responses, and embed decision-making intelligence into sales-facing tools. Your work will drive prescriptive analytics, root cause analysis, and agent behavior tuning. You will do all this by:- Developing and productionalizing ML models (e.g., forecasting, anomaly detection, attribution, causal inference) used by our AI agents and insights platforms.Building RCA and recommendation engines that enhance summarization and chatbot capabilities.Analyzing agent interactions and implementing LLM evaluation pipelines to measure factual accuracy, latency, and user satisfaction.- Supporting experimentation and A/B testing for new insight types and interaction methods.- Partnering with AI engineers and PMs to scale features across regions and tools.- Influencing upstream data model design, driving KPI definitions, and developing your own data solutions as needed.- Building and supporting dashboards and self-service tools (using several platforms) to analyze and present internal and external data.
  • Eagerness and ability to learn new skills and solve dynamic problems in an encouraging and expansive environment.
  • Familiarity with vector similarity search, RAG architectures, and LLM prompt evaluation.
  • Experience co-developing with software engineers in production environments.
  • Ability to lead development projects from start to finish.
  • Comfort with ambiguity. Ability to structure complex analysis through data analysis and strategy research.
  • Collaborate closely with business teams to deep dive into business performance and improve reporting dashboards on key operational metrics.
  • 6+ years of experience in a Data Visualization, Data Science, Data Analysis, or Data Translation role, with a keen eye for design and attention to detail.
  • Applied knowledge of statistical data analysis, predictive modeling classification, Time Series techniques, sampling methods, multivariate analysis, hypothesis testing, and drift analysis.
  • Proficiency in SQL and experience with at least one major data analytics platform, such as Hadoop, Spark, or Snowflake.
  • Expertise with data visualization tools (such as Tableau, d3, plotly, etc.) for data analysis and presentation. Experience with Tableau Server, TabPy, and Extensions is a plus.
  • Proficiency in programming languages, tools, and frameworks like Python, Git, Notebooks, Dataiku, and Streamlit.
  • Knowledge of project management and productivity tools such as Wrike, Sketch.
  • Strong time management skills with the ability to collaborate across multiple teams.
  • Knowledge of best practices in data analysis, data visualization, and data science.
  • Able to balance competing priorities, long-term projects, and ad hoc requirements.
  • Ability to work in a fast-paced, dynamic, constantly evolving business environment.
  • Bachelors's degree in Computer Science, Statistics, Mathematics, Engineering, Economics, Applied Mathematics, Machine Learning, or a related field.
  • Experience with observability tools for LLMs (e.g., LangSmith, Truera, Weights & Biases)
  • Proven experience working with LLMs and GenAI frameworks (LangChain, LlamaIndex, etc.)
  • Strong experience articulating and translating business questions into data solutions.
  • Communicate results and insights effectively to partners and senior leaders, as well as both technical and non-technical audiences.
  • Experience with anomaly detection and causal inference models.
  • Sound communication skills - adept at messaging domain and technical content, at a level appropriate for the audience. Strong ability to gain trust with internal customers and senior leadership.
  • Familiarity with embedding, retrieval algorithms, agents, and data modeling for vector development graphs.
  • Advanced Degree (MS or Ph.D.) in Economics, Electrical Engineering, Statistics, Data Science, or a similar quantitative field.
Note: Apple benefit, compensation and employee stock programs are subject to eligibility requirements and other terms of the applicable plan or program.