招聘
This role is pivotal in understanding customer behavior and translating business challenges into intelligent analytical solutions. The ideal candidate will combine deep expertise in predictive modeling, AI/ML, and conversational AI with strong business engagement skills to deliver impactful, technology-driven solutions that enhance customer experience and drive business growth.
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MBA/Masters in a quantitative discipline like Mathematics/Statistics/Operations Research/Computer Science/Economics/Engineering or B-Tech in any related engineering discipline
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The ideal candidate should have 3+ years of experience in the Marketing Analytics domain with a strong foundation in analytical thinking and problem-solving.
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They must possess proven technical expertise in AI/ML modeling, including propensity and predictive modeling, along with hands-on experience in Agentic AI applications development and Conversational AI.
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The candidate should be proficient in Python and SQL, experienced in working with GCP and Big Query, and capable of building dashboards using Power BI or Qlik Sense.
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Strong understanding of Digital Marketing and Customer Analytics, combined with data handling and ETL processes, is essential.
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Above all, the candidate must demonstrate the ability to confidently engage with business stakeholders and deliver technology-driven solutions that create measurable business impact.
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Strategic Business Partnership: Collaborate closely business stake holders to deeply understand business challenges, define key performance indicators (KPIs), and translate complex customer-focused questions into clear, actionable analytical requirements. Act as a trusted analytics advisor to business teams, proactively identifying opportunities where data and AI can solve real business problems.
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Customer Insight & Propensity Modeling: Conduct in-depth analysis of customer behavioral data to identify trends, patterns, and opportunities. Design, develop, and deploy propensity models (e.g., purchase propensity, churn prediction, upsell/cross-sell likelihood, lead conversion likelihood) using advanced statistical and machine learning techniques. Translate model outputs into actionable business recommendations.
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Agentic AI Application Development & Optimization: Lead the design, development, and continuous improvement of AI-powered solutions to enhance customer engagement and automate customer interactions. Collaborate with product and technology teams to integrate Agentic AI capabilities, define conversation flows, and measure chatbot effectiveness through relevant KPIs.
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BI & Data Product Development: Build, maintain, and optimize interactive dashboards and reports using BI tools (e.g., Power BI, Qlik Sense) to visualize
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Customer performance metrics. Develop robust and scalable data pipelines to ensure timely, accurate, and reliable data flow from various customer data sources into analytical platforms.
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Process Efficiency & Innovation: Continuously identify opportunities to enhance data collection, processing, analysis, and insight delivery workflows. Proactively research, evaluate, and implement new tools, technologies, and methodologies — including Generative AI — to increase efficiency, accuracy, and depth of analytical capabilities.
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Cross-functional Collaboration: Work seamlessly with data engineers, IT, marketing, and product teams to ensure data consistency, integrate analytical solutions, and drive data-driven decision-making across the organization. Effectively communicate complex analytical findings and model outputs to both technical and non-technical audiences.
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关于Ford

Ford
PublicThe Ford Motor Company is an American multinational automobile manufacturer headquartered in Dearborn, Michigan, United States. It was founded by Henry Ford and incorporated on June 16, 1903.
10,001+
员工数
Dearborn
总部位置
$48B
企业估值
评价
3.3
10条评价
工作生 活平衡
3.8
薪酬
3.5
企业文化
2.8
职业发展
2.2
管理层
2.5
45%
推荐给朋友
优点
Good benefits
Good work-life balance
Strong management support/respect
缺点
Poor/terrible management
Limited career growth opportunities
High turnover
薪资范围
21个数据点
Mid/L4
Senior/L5
Mid/L4 · ADAS Data Analytics Engineer
1份报告
$132,847
年薪总额
基本工资
$102,190
股票
-
奖金
-
$132,847
$132,847
面试经验
3次面试
难度
3.0
/ 5
时长
14-28周
体验
正面 0%
中性 67%
负面 33%
面试流程
1
Application Review
2
Phone Screening
3
Technical Interview
4
Team Interview
5
Offer
常见问题
Technical Knowledge
Behavioral/STAR
Past Experience
Coding/Algorithm
新闻动态
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3d ago
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News
·
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