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Customer Data Platform CDP

⬢ LIVELLO 2Tecniche
Alto
Impatto sullo stipendio
2 mesi
Tempo di apprendimento
Medio
Difficoltà
3
Carriere
In sintesi

A Customer Data Platform (CDP) consolidates customer data from 20+ sources (web analytics, email, CRM, ads, transactions) into single profiles. Engineers build: data pipelines (collect from sources), identity resolution (which events belong to same user?), segmentation (group users), and activation (send to destinations). Mastery takes 3-4 weeks. Senior CDP engineers earn $150-250k because they enable $10M+ in marketing revenue. Becoming one of the 8% of engineers who can design CDPs is valuable.

Cos'è Customer Data Platform CDP

A Customer Data Platform (CDP) consolidates customer data from 20+ sources (website analytics, email, CRM, ads, transactions) into unified customer profiles. It enables: personalization (show products based on past behavior), segmentation (group similar customers), analytics (understand customer journeys), and activation (send to marketing tools). Core components: data collection (SDKs, APIs), identity resolution (link devices to users), data modeling (transform raw events into profiles), segmentation (define customer groups), and reverse ETL (push segments to destinations).

🔧 STRUMENTI ED ECOSISTEMA
CDP platforms (Segment, mParticle, Tealium)Data warehouse (Snowflake, BigQuery)ETL tools (dbt, Airflow)Identity resolution enginesEvent tracking librariesSegmentation buildersReverse ETL toolsAnalytics databasesCustomer journey mappingTesting tools

💰 Stipendio per regione

RegioneLivello baseMidLivello esperto
USA$85k$145k$240k
UK£53k£90k£150k
EU€58k€98k€160k
CANADAC$90kC$155kC$255k

🎯 Carriere che usano Customer Data Platform CDP

⚖ Confronta con

❓ Domande frequenti

What's the difference between a CDP and a data warehouse?
Data warehouse (Snowflake, BigQuery): stores all raw data, queries fast. CDP: unified customer profiles + ready-to-activate segments. DW = tool for analysis. CDP = tool for marketing/personalization. Many companies use both (DW for analysis, CDP for activation).
What's identity resolution and why is it hard?
Identity resolution: connecting events across devices/sessions to single user. Hard because: users have 5+ identities (email, phone, device ID, anonymous cookie). CDP must: match emails across devices, suppress duplicates, resolve conflicts.
How do you prevent bad data in CDP?
Implement event validation (schema enforcement): every event must have required fields (user_id, timestamp, event_type). Failed events go to dead-letter queue (not silently dropped). Monitor data quality metrics (% invalid, latency).
What's reverse ETL and how does CDP use it?
Reverse ETL: push data FROM warehouse/CDP TO destinations (email, ads, CRM). Example: CDP creates segment 'churning customers', reverse ETL sends list to email tool (automated win-back campaign). Closes the loop.
How do you segment customers effectively?
Behavior-based (users who did X), demographic (users in location Y), RFM (Recency, Frequency, Monetary value). Complex segments: users who visited product page AND opened email AND spent >$100. SQL/dbt required.
What's the privacy impact of CDPs?
GDPR/CCPA: users can request data deletion. CDP must: identify all records for that user (identity resolution important), delete them all. Consent management: must track which users opted in to tracking. Non-compliance = fines.
How do you measure CDP success?
Business metrics: uplift from personalization (email CTR +10%, conversion +5%), cost of customer acquisition (targeting more efficient). Technical metrics: data freshness (how stale is profile?), segment accuracy (are the right users in segment?), API latency.

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