모든 템플릿

Data Literacy & Self-Service Analytics Adoption Assessment

An internal assessment for measuring employees' data literacy, self-service analytics confidence, tool adoption, and support needs — designed to surface skill gaps, trust issues, and barriers that inform data-enablement strategy.

샘플 질문

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질문 22개 · 약 10분
Q01
메시지

Welcome to the Data Literacy & Self-Service Analytics Survey. This survey is designed to understand how you find, use, and analyze data in your day-to-day work. Your responses will help us identify gaps in tools, training, and support so we can better enable a data-driven culture. • Participation is voluntary and you may stop at any time. • All responses are anonymous and will be reported only in aggregate. • There are no right or wrong answers — we are interested in your honest experience. • Estimated time: 6–8 minutes. Please click Next to begin.

Q02
의견 척도

How would you rate your overall proficiency with data analysis and data tools?

척도: 17
최소:Novice최대:Expert
Q03
드롭다운

In a typical week, approximately how much time do you spend finding, preparing, or cleaning data before you can use it?

  • Less than 15 minutes
  • 15–30 minutes
  • 31–60 minutes
  • 1–2 hours
  • 2–4 hours
  • More than 4 hours
  • I don't do this type of work
Q04
의견 척도

How would you rate your current ability to create charts or visualizations from raw data?

척도: 17
최소:Cannot do this최대:Very proficient
Q05
순위 매기기

Please rank the following barriers by how much they limit your use of data. Place the biggest barrier at the top.

  1. Limited tool access or permissions
  2. Unclear metric definitions
  3. Tool complexity or steep learning curve
  4. Data quality or freshness issues
  5. Not enough time
  6. Not sure where to start
  7. Worried about making a mistake
드래그하여 순위 지정
Q06
의견 척도

How confident are you in your ability to use self-service analytics tools to answer work-related questions?

척도: 17
최소:Not at all confident최대:Extremely confident
Q07
순위 매기기

Please rank the following support options by how helpful they would be for improving your data skills and workflows. Place the most helpful at the top.

  1. Live training or workshops
  2. Office hours with the data team
  3. How-to guides and documentation
  4. Templates or prebuilt dashboards
  5. Improved data catalog or search
  6. Faster or more reliable data refreshes
  7. Streamlined access or permissions
드래그하여 순위 지정
Q08
장문형

Based on your responses in this survey, please share any additional thoughts about your experience with data tools, data skills, or self-service analytics at our organization. (Optional)

Q09
드롭다운

Which best describes your primary role or function?

  • Engineering
  • Product Management
  • Design or UX
  • Marketing
  • Sales
  • Customer Success or Support
  • Operations
  • Finance
  • HR or People
  • IT or Security
  • Other (please specify)
Q10
메시지

Thank you for completing this survey! Your responses are anonymous and will be used in aggregate to improve data tools, training, and support across the organization. If you have urgent data needs, please reach out to your data team directly.

Q11
드롭다운

In a typical work week, how often do you analyze or use data as part of your role?

  • Several times a day
  • About once per day
  • A few times per week
  • About once per week
  • Less than once per week
  • I do not regularly use data in my role
Q12
객관식

Which of the following tools have you used in the last 30 days to explore or report on data? Select all that apply.

  • Spreadsheets (Excel, Google Sheets)
  • BI dashboards (Tableau, Power BI, Looker)
  • Product analytics (Amplitude, Mixpanel)
  • SQL tools (e.g., Snowflake/BigQuery clients)
  • Notebooks (Jupyter, RStudio)
  • Data catalog or lineage tool
  • CRM or marketing analytics
  • Visualization builders (Looker Studio, Data Studio)
  • Other tool (please specify)
Q13
의견 척도

How would you rate your current ability to write or modify a data query (e.g., SQL)?

척도: 17
최소:Cannot do this최대:Very proficient
Q14
의견 척도

How clear are the data governance and usage guidelines that apply to your role?

척도: 15
최소:Very unclear최대:Very clear
Q15
의견 척도

How much do you trust the accuracy of the data you typically use in your work?

척도: 17
최소:Do not trust at all최대:Trust completely
Q16
AI 인터뷰

We'd like to learn more about your day-to-day experience with data. Please describe a recent situation where you needed to find or analyze data to make a decision — what went well and what was frustrating?

Q17
드롭다운

How long have you been at the company?

  • Less than 6 months
  • 6–12 months
  • 1–2 years
  • 3–5 years
  • More than 5 years
Q18
의견 척도

How easy is it to find the right dataset or dashboard when you need it?

척도: 17
최소:Very difficult최대:Very easy
Q19
의견 척도

How would you rate your current ability to interpret a dashboard or report and draw actionable conclusions?

척도: 17
최소:Cannot do this최대:Very proficient
Q20
드롭다운

Where are you primarily located?

  • Americas
  • EMEA
  • APAC
  • Multiple regions
  • Prefer not to say
Q21
의견 척도

How easy is it to find clear, agreed-upon definitions for the key metrics you use?

척도: 17
최소:Very difficult최대:Very easy
Q22
드롭다운

Are you a people manager?

  • Yes
  • No
  • Prefer not to say

포함된 기능

  • AI 후속 질문

    정형화된 설문이 놓치는 세부 내용을, 주관식 답변에 맞춰 AI가 심층 질문으로 끌어냅니다.

  • 주의력 확인 장치

    성의 없는 답변과 저품질 응답자를 걸러내는 내장 안전장치입니다.

  • AI가 작성한 문안

    문구, 질문 순서, 분기 로직까지 AI가 연구 목표에 맞춰 작성합니다.

  • 자동 리포트

    응답이 모이면 주요 주제, 인용문, 이해하기 쉬운 요약이 자동으로 작성됩니다.

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이 템플릿의 설계 목적을 소개합니다. 다른 설문 도구에서는 직접 비교할 만한 템플릿을 찾지 못했습니다.

차별화 포인트

  • Includes an adaptive AI follow-up interview that asks employees to describe their day-to-day data experience in their own words, going beyond fixed-choice questions to probe specifics and follow up on vague answers
  • Combines opinion-scale ratings across distinct skill dimensions (overall proficiency, chart-building, query writing, dashboard interpretation) so gaps can be pinpointed by skill type rather than a single blended score
  • Uses ranking questions to force prioritization of barriers to data use and of support options, giving clearer signal for data-enablement strategy than simple multiple-choice checklists
  • Captures role, tenure, location, and manager status via dropdowns for segmentation, plus an open-text reflection question, all wrapped in a transparent, anonymous framing communicated to respondents

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