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Urgent! ML Data Science Manager - Marketplace Analytics, Apple Ads Job Opening In Cupertino – Now Hiring Apple
**Role Number:** 200616139-0836
**Summary**
At Apple, we work every day to create products that enrich people’s lives.
Our Apple Ads group makes it possible for people around the world to easily access informative and imaginative content on their devices while helping publishers and developers promote and monetize their work.
Our technology and services power advertising in Apple News, the App Store, and on Apple TV+.
Our platforms are highly performant, deployed at scale, and set new standards for enabling effective advertising while protecting user privacy.
**Description**
The Data Insights team within Apple Ads is seeking a bright and endlessly curious data expert to lead our Core Insights team that supports the organization.
This individual will be responsible for leading a team that turns the huge amounts of data generated by user searches, app metadata, and App Store content into business insights that improve the customer experience for the end-user as well as drive discovery and productivity for app developers.
We are seeking a self-motivated leader that can execute on near-term plans and contribute to defining a longer-term vision for our team and Apple Ads.
This role involves working with internet-scale data across numerous product and customer touch points; undertaking in-depth, quantitative analysis on business performance; developing and running prediction and forecasting models; and building ML models including LLMs to drive core business decisions.
The team’s culture is focused on rapid iteration with open feedback and debate along the way, plus strong collaboration with product, engineering, business, and marketing partners.
You will have experience hiring and leading large-scale, sophisticated data science teams that deliver impactful insights via pattern mining, anomaly detection, modeling, classification, and creation of wide ranging analytical tooling.
Successful candidates will take pride in implementing and sustaining end-to-end analytical solutions that have direct and measurable impact.
The role requires both a broad knowledge of existing data mining algorithms and creativity to invent and customize when necessary.
**Minimum Qualifications**
+ 10+ years of data science experience with 3+ years of experience leading data science, or machine learning teams.
+ 2+ years of experience in mobile advertising and performance-based advertising platforms.
+ Experience in statistical analysis, machine learning models, and advanced quantitative methods with a strong focus in experiment design and causal inference.
Must include experience with regression, classification, clustering, time-series analysis, and LLMs.
+ Exceptional programming skills in Python and SQL.
Comfort with advanced analytics and data visualization tools and libraries such as Pandas, R, Spark, and Tableau.
+ Deep familiarity with commonly user Statistics and ML libraries such as ScikitLearn, SparkMLLib, SciPy, and/or StatsModels.
Familiarity Causal Inference packages such as CausalImpact, DoubleML, DoWhy, and EconML is a big plus.
+ Experience working with modern data engineering technologies and cloud-based data warehousing solutions.
Familiarity with database modeling and data warehousing principles.
+ Exceptional communication, collaboration, stakeholder management, and planning skills; demonstrated success building buy-in for an innovative and bold vision.
+ Must be able to guide and lead ML data scientists embedded into engineering capabilities.
Seamlessly collaborate with a wide range of stakeholders including senior leadership, product managers, finance, engineering.
Able to create trust.
+ Have a strategic mindset with an aptitude to condense complex concepts, analysis, and models into actionable data driven solutions and strategies that will propel Apple’s digital advertising businesses.
+ Bachelor's in a quantitative field, such as Engineering, Computer Science, Statistics, Applied Mathematics, Econometrics, Operations Research, Social Sciences, or equivalent professional experience.
**Preferred Qualifications**
+ 15+ years of data science experience with 5+ years of experience leading data science, or machine learning teams.
+ 4+ years of experience in mobile advertising and performance-based advertising platforms, direct work experience in ad auctions, especially keyword matching, predictions, ranking, pricing, or relevance is a big plus.
+ Ph.D. or Masters in a quantitative field, such as Engineering, Computer Science, Statistics, Applied Mathematics, Econometrics, Operations Research, Social Sciences, or equivalent professional experience.
**Pay & Benefits**
At Apple, base pay is one part of our total compensation package and is determined within a range.
This provides the opportunity to progress as you grow and develop within a role.
The base pay range for this role is between $198,300 and $298,100, and your base pay will depend on your skills, qualifications, experience, and location.
Apple employees also have the opportunity to become an Apple shareholder through participation in Apple’s discretionary employee stock programs.
Apple employees are eligible for discretionary restricted stock unit awards, and can purchase Apple stock at a discount if voluntarily participating in Apple’s Employee Stock Purchase Plan.
You’ll also receive benefits including: Comprehensive medical and dental coverage, retirement benefits, a range of discounted products and free services, and for formal education related to advancing your career at Apple, reimbursement for certain educational expenses — including tuition.
Additionally, this role might be eligible for discretionary bonuses or commission payments as well as relocation.
Learn more about Apple Benefits.
(https://www.apple.com/careers/us/benefits.html)
Note: Apple benefit, compensation and employee stock programs are subject to eligibility requirements and other terms of the applicable plan or program.
Apple is an equal opportunity employer that is committed to inclusion and diversity.
We seek to promote equal opportunity for all applicants without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, Veteran status, or other legally protected characteristics.
Learn more about your EEO rights as an applicant (https://www.eeoc.gov/sites/default/files/2023-06/22-088_EEOC_KnowYourRights6.12ScreenRdr.pdf) .
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Unlock Your ML Data Potential: Insight & Career Growth Guide
Real-time ML Data Jobs Trends in Cupertino, United States (Graphical Representation)
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Great news! Apple is currently hiring and seeking a ML Data Science Manager Marketplace Analytics, Apple Ads to join their team. Feel free to download the job details.
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An organization's rules and standards set how people should be treated in the office and how different situations should be handled. The work culture at Apple adheres to the cultural norms as outlined by Expertini.
The fundamental ethical values are:The average salary range for a ML Data Science Manager Marketplace Analytics, Apple Ads Jobs United States varies, but the pay scale is rated "Standard" in Cupertino. Salary levels may vary depending on your industry, experience, and skills. It's essential to research and negotiate effectively. We advise reading the full job specification before proceeding with the application to understand the salary package.
Key qualifications for ML Data Science Manager Marketplace Analytics, Apple Ads typically include Other General and a list of qualifications and expertise as mentioned in the job specification. Be sure to check the specific job listing for detailed requirements and qualifications.
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Before the Interview:To prepare for your ML Data Science Manager Marketplace Analytics, Apple Ads interview at Apple, research the company, understand the job requirements, and practice common interview questions.
Highlight your leadership skills, achievements, and strategic thinking abilities. Be prepared to discuss your experience with HR, including your approach to meeting targets as a team player. Additionally, review the Apple's products or services and be prepared to discuss how you can contribute to their success.
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