Competitive Intelligence Lead

Meta

• $120K — $145K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree with 4+ years in business intelligence, product analytics, or similar (2+ years with a Ph.D.)
  • Proficient in ethically sourcing and synthesizing high-quality insights
  • Experience with AI-powered tools, including LLM and AI agent design
  • Strong background in data analytics tools and managing 1P/3P datasets
  • Familiarity with data querying languages like SQL and scripting in Python
  • Experience in causal inference techniques and Bayesian aggregation
  • Exceptional communication skills for presenting complex findings

Responsibilities

  • Influence product direction through data-driven narratives and competitive insights
  • Conduct analyses using 3P datasets to deliver actionable market strategy insights
  • Onboard and evaluate 3P datasets for signal quality and predictive power
  • Triangulate and synthesize data from various imperfect sources into high-fidelity reports
  • Apply quasi-experimental designs to analyze market shocks and competitor actions
  • Drive adoption of appropriate technical methods and best practices within the team
  • Advise on market trends to enhance forecast accuracy and strategy

Benefits

  • Collaborative work environment focused on problem-solving
  • Opportunities for continued learning and development in AI technologies
  • Recognition as a thought partner in cross-functional teams
  • Potential to influence key product and strategy decisions
  • Flexibility in managing high-impact, complex projects
Full Job Description
As an Analyst in Meta's Competitive Intelligence organization, you will operate at the intersection of analytics, data science, and market strategy. You will work on major projects and product areas (often in environments of significant ambiguity or technical complexity) to drive both technical and business outcomes. This is a hands-on, high-impact role for builders who thrive on solving real problems. This role demands a unique blend of analytical and statistical knowledge, strategic thinking, and the ability to translate complex insights into impactful product and business decisions. You will be recognized as a thought partner by cross-functional leads and will help shape the analytical foundations that inform how we build and grow our products.

Responsibilities

Market Strategy: Influence organization-level product direction through data-driven narratives and an in depth understanding of the competitive landscape.
• Demonstrated experience operating at scale, and across ambiguous, environments with working knowledge of econometrics.
• As a quantitative market-strategist, you will blend practical and applied understanding with technical expertise, including pressure-testing data for quality, reliability, understanding data biases and being solution-driven.
• Analytics Leadership: Conduct analyses with 3P datasets, develop statistical models and forecasts, and deliver actionable insights that inform market and business strategy.
• These include, but are not limited to:
• Data onboarding: Identify, onboard, and rigorously evaluate 3P datasets to determine their signal-to-noise ratio and predictive power.
• Data triangulation: Triangulate data from many sources of imperfect information.
• Synthesize multiple, low-fidelity 3rd-party signals into a single high-fidelity trend report using Bayesian aggregation or other methods.
• Data transformation: Apply quasi-experimental designs (e.g., synthetic control, diff-in-diff) to isolate the impact of exogenous market shocks and competitor actions on internal performance metrics, using 3rd-party behavioral and economic datasets Insight and implications: Apply guidance from analyses to increase the accuracy of forecasts and better understand market trends.
• Technical & Methodological Knowledge: Demonstrated knowledge in relevant technical or methodological areas (e.g., causal inference, bayesian aggregation), driving the adoption of appropriate methods and organization-wide best practices that raise the bar for the entire team.

Minimum Qualifications
• Bachelors degree and a minimum of 4 years of work experience (minimum of 2 years with a Ph.D.) in business intelligence, product analytics, or economic / strategy consulting in a technology environment with increasing scope and impact
• Demonstrated skill to ethically source, validate, and synthesize high-signal insights from people (e.g., stakeholder interviews, skilled conversations, field research, and relationship-based information gathering) while maintaining high standards for privacy, consent, and integrity
• Proficiency in AI-powered tools: Demonstrate working knowledge of Generative AI technologies (e.g., LLM and AI agents) and experience designing, prompting, and orchestrating AI systems (e.g., prompt engineering) to automate data analyses, synthesize insights, and execute multi-step analytical tasks (e.g., prompting agent to clean datasets, build visualizations)
• Practical working understanding of data-analytics tools, and direct experience managing, analyzing, manipulating and interpreting 1P and external 3P datasets
• Experience with data querying languages (e.g., SQL), scripting languages (e.g., Python), and/or statistical/mathematical software (e.g., R)
• Experience with statistical analysis, including causal inference (e.g., randomized control trials, quasi-experimentation such as synthetic control, diff-in-diff, meta-analyses) and/or bayesian aggregation (e.g., bayesian pooling, hierarchical modeling)
• Demonstrated communication skills and experience presenting complex findings to both technical and non-technical stakeholders
• Demonstrated experience thriving in ambiguous environments and shaping new analytics organizations or products

Preferred Qualifications
• Master's or Ph.D. Degree in a quantitative field such as Quantitative Economics or Political Science, Operations Research, Data Science, Computer Science, Physics, Business, or Mathematics
• Demonstrated ability to integrate AI tools to optimize/redesign workflows and drive measurable impact (e.g., efficiency gains, quality improvements)
• Experience adhering to and implementing responsible, ethical AI practices (e.g., risk assessment, bias mitigation, quality and accuracy reviews)
• Demonstrated ongoing AI skill development (e.g., prompt/context engineering, agent orchestration) and staying current with emerging AI technologies

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