Senior/Staff Data Scientist, AnalyticsCrane Venture Partners • New York, New York, United States
Senior/Staff Data Scientist, Analytics
Crane Venture Partners
- New York, New York, United States
- New York, New York, United States
Über
Senior Data Scientist
focusing on Analytics, you'll serve as the statistical backbone of Bluefish’s Data Science team. You'll own experimentation and causal inference frameworks, produce rigorous methodological work, and function as the key escalation point for data-driven decision‑making across the organization.
You'll collaborate closely with Data Analysts, Applied Researchers, and cross‑functional stakeholders — including Product, Marketing Strategy and Services, and Operations — to deliver insights, harden the metrics we report, and deepen the capabilities of our platform.
This role presents a greenfield opportunity to help define Bluefish's data science practice from the ground up, with direct impact on both our internal operations and the analytics products we deliver to customers.
This role is based in our NYC office and follows a hybrid working policy with 3 days in office.
What You'll Be Doing
Own experimentation end-to-end — design, execute, and analyze A/B tests and other experiments; define statistical significance frameworks
Drive causal inference work — lead analyses that go beyond correlation to understand the mechanisms behind product and customer outcomes
Serve as the analytics escalation point — be the go‑to resource across the org when problems require deeper statistical rigor
Build and maintain methodological standards — document and review statistical methods used across the team; ensure analytical quality and reproducibility
Produce research — author internal research papers, benchmark studies, and methodology documentation; contribute to external‑facing analyses (e.g., vertical benchmarking, state of AI)
Support ad‑hoc deep‑dives — respond to data requests from RevOps, MSS, Operations, and leadership with fast turnaround and clear narrative
Qualifications
Strong SQL and Python skills — you write production‑quality queries and analytical scripts
Deep statistics background — hypothesis testing, confidence intervals, power analysis, causal inference
Extensive experience designing and operating experimentation frameworks at scale
Strong analytical and problem‑solving abilities, with experience in data preprocessing, feature engineering, and model evaluation
Business acumen — you translate analytical findings into clear, actionable narratives for non‑technical stakeholders
Excellent communication and narrative crafting skills, with the ability to explain complex methods to product, sales, and executive audiences
Experience working with LLM or AI product data is a strong plus
Familiarity with supervised learning techniques (e.g., regression, classification, gradient boosting) for predictive analytics use cases
Exposure to unsupervised learning methods (e.g., clustering, dimensionality reduction) for customer segmentation or behavioral analysis
Some experience working alongside or supporting ML model deployment — understanding inference pipelines, feature stores, or model monitoring
Comfort reading and interpreting NLP/ML research papers to stay current on methodological advances relevant to our data
Experience with BI/visualization tools (e.g., Looker, Omni, Tableau)
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Sprachkenntnisse
- English
Hinweis für Nutzer
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