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Data Analyst

at Millennium

Back to all Python jobs
Millennium logo
Industry not specified

Data Analyst

at Millennium

JuniorNo visa sponsorshipPython

Posted 6 hours ago

No clicks

Compensation
Not specified

Currency: Not specified

City
Not specified
Country
Not specified

**Data Analyst** Seek Data Analyst to fuel quantamental strategy in public equities. Key tasks: orchestrating dataset workflows, vetting alternative data, signal testing, collaborating with investment team, automating processes, and tying data back to 3-statement modeling. Must-haves: 1-3 years' analytic experience (alternative data vendors a plus), robust Python and SQL skills, market investing interest.

Data Analyst

We are looking for a Data Analyst to join a public equities investment team pursuing a quantamental strategy across alternative data and fundamental research. The role is centered on sourcing, validating, and scaling differentiated datasets that can improve security selection and deepen our understanding of company-specific and industry-level inflections. You should be equally comfortable working with messy data, testing hypotheses rigorously, and framing outputs in an investment context.

Responsibilities

  • Build and maintain workflows to ingest, clean, map, and analyze large-scale structured and unstructured datasets
  • Evaluate alternative data for relevance, integrity, coverage, timeliness, and predictive power
  • Conduct signal testing and backtesting to determine whether a dataset adds value to the investment process
  • Work closely with the investment team to turn raw data into actionable views on revenue trends, KPIs, competitive dynamics, and inflection points
  • Use AI agents and automation to accelerate research, tool-building, and internal processes
  • Support basic 3-statement modeling and connect data findings to fundamental underwriting

Requirements

  • 1–3 years of experience, ideally at an alternative data vendor in research, product, or analytics
  • Strong Python and SQL skills
  • Demonstrated interest in public markets investing and differentiated research
  • Ability to distinguish signal from noise and apply judgment, not just run analysis
  • High ownership, speed, and intellectual curiosity

Background

  • The most direct fit is someone with 1–3 years at an alternative data provider, but we are open to non-traditional candidates. Strong candidates may also come from backgrounds such as investment banking with self-taught coding, or legal, market research, or other analytical roles where they independently built scrapers, worked with data, and developed a genuine investing process. We care more about investor instinct, analytical horsepower, and resourcefulness than a perfectly standard resume.

Nice to Have

  • Experience with large-scale data analysis across very large datasets
  • Web scraping, entity resolution, or API-based data collection
  • Familiarity with signal evaluation, time-series analysis, or statistical testing
  • Understanding of company KPIs, operating metrics, and financial statements
  • Personal investing experience or clear evidence of market obsession

Data Analyst

at Millennium

Back to all Python jobs
Millennium logo
Industry not specified

Data Analyst

at Millennium

JuniorNo visa sponsorshipPython

Posted 6 hours ago

No clicks

Compensation
Not specified

Currency: Not specified

City
Not specified
Country
Not specified

**Data Analyst** Seek Data Analyst to fuel quantamental strategy in public equities. Key tasks: orchestrating dataset workflows, vetting alternative data, signal testing, collaborating with investment team, automating processes, and tying data back to 3-statement modeling. Must-haves: 1-3 years' analytic experience (alternative data vendors a plus), robust Python and SQL skills, market investing interest.

Data Analyst

We are looking for a Data Analyst to join a public equities investment team pursuing a quantamental strategy across alternative data and fundamental research. The role is centered on sourcing, validating, and scaling differentiated datasets that can improve security selection and deepen our understanding of company-specific and industry-level inflections. You should be equally comfortable working with messy data, testing hypotheses rigorously, and framing outputs in an investment context.

Responsibilities

  • Build and maintain workflows to ingest, clean, map, and analyze large-scale structured and unstructured datasets
  • Evaluate alternative data for relevance, integrity, coverage, timeliness, and predictive power
  • Conduct signal testing and backtesting to determine whether a dataset adds value to the investment process
  • Work closely with the investment team to turn raw data into actionable views on revenue trends, KPIs, competitive dynamics, and inflection points
  • Use AI agents and automation to accelerate research, tool-building, and internal processes
  • Support basic 3-statement modeling and connect data findings to fundamental underwriting

Requirements

  • 1–3 years of experience, ideally at an alternative data vendor in research, product, or analytics
  • Strong Python and SQL skills
  • Demonstrated interest in public markets investing and differentiated research
  • Ability to distinguish signal from noise and apply judgment, not just run analysis
  • High ownership, speed, and intellectual curiosity

Background

  • The most direct fit is someone with 1–3 years at an alternative data provider, but we are open to non-traditional candidates. Strong candidates may also come from backgrounds such as investment banking with self-taught coding, or legal, market research, or other analytical roles where they independently built scrapers, worked with data, and developed a genuine investing process. We care more about investor instinct, analytical horsepower, and resourcefulness than a perfectly standard resume.

Nice to Have

  • Experience with large-scale data analysis across very large datasets
  • Web scraping, entity resolution, or API-based data collection
  • Familiarity with signal evaluation, time-series analysis, or statistical testing
  • Understanding of company KPIs, operating metrics, and financial statements
  • Personal investing experience or clear evidence of market obsession

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