NumPy jobs in 2026 — demand, top roles hiring, and related skills

As of 2026-09-30, NumPy appears in 1,710 job postings indexed by Skillenai over the past 90 days — Data Scientist has the most postings mentioning NumPy, with demand share down 0.1% vs the prior 4 weeks.

Last updated · 90d ending 2026-09-30

Postings · last 90 days
1,710
Demand vs prior month
down 0.1% vs the prior 4 weeks
Top role · 19.5% of skill postings
Top hiring metro
New York City

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Frequently asked questions about NumPy

+Is NumPy in demand in 2026?

Yes. NumPy appears in 1,710 job postings indexed by Skillenai over the 90 days ending 2026-09-30. Data Scientist accounts for the most postings mentioning NumPy (19.5% of all postings mentioning NumPy).

+What jobs require NumPy?

According to the Skillenai jobs index over the 90 days ending 2026-09-30, among roles with at least 20 postings, the highest shares mentioning NumPy are Mathematics Expert (100.0% of that role’s postings mention NumPy), Quantitative Risk Analyst (31.8% of that role’s postings mention NumPy), Python Engineer (23.1% of that role’s postings mention NumPy).

+What skills are commonly paired with NumPy?

Across job postings indexed by Skillenai (90 days ending 2026-09-30), NumPy most often appears alongside Python, pandas, SQL, scikit-learn, PyTorch.

+Where is NumPy most in demand?

As of 2026-09-30, the metro areas posting the most jobs requiring NumPy are New York City, Bengaluru, London, Toronto, San Francisco, according to the Skillenai jobs index.

+How can I keep up with new NumPy content and jobs?

Skillenai indexes news, blog posts, and research papers mentioning NumPy alongside the jobs index. You can subscribe to a daily email digest of new NumPy content from your Skillenai account.

+Which skills come before and after NumPy?

The skill-flow chart shows skills documented in adjacent positions across observed employer changes. An outgoing skill is documented in the following position but not the preceding one. These are ideas to explore, not proven prerequisites, acquisition dates, or levels of mastery. Each ribbon counts employer moves with that skill pair; one move can contribute several pairs.

Weekly indexed postings requiring NumPy — last 90 days

Salary distribution

Box = 25th–75th percentile · tick = median · whisker = 10th–90th · USD, annualized

Career paths around NumPy

Skills documented before and after this skill across employer changes.

Historical career profiles · all locations

Skills before NumPy

Before NumPypython → NumPy: 151 observed employer moves with this skill pairsql → NumPy: 110 observed employer moves with this skill pairPower BI → NumPy: 65 observed employer moves with this skill pairTableau → NumPy: 61 observed employer moves with this skill pairExcel → NumPy: 49 observed employer moves with this skill pairMYSQL → NumPy: 36 observed employer moves with this skill pairJavaScript → NumPy: 36 observed employer moves with this skill pairAWS → NumPy: 32 observed employer moves with this skill pairNumPypython: 151 movespython151 movessql: 110 movessql110 movesPower BI: 65 movesPower BI65 movesTableau: 61 movesTableau61 movesExcel: 49 movesExcel49 movesMYSQL: 36 movesMYSQL36 movesJavaScript: 36 movesJavaScript36 movesAWS: 32 movesAWS32 moves

Skills after NumPy

After NumPyNumPy → sql: 67 observed employer moves with this skill pairNumPy → Power BI: 62 observed employer moves with this skill pairNumPy → Tableau: 51 observed employer moves with this skill pairNumPy → python: 50 observed employer moves with this skill pairNumPy → AWS: 39 observed employer moves with this skill pairNumPy → docker: 38 observed employer moves with this skill pairNumPy → snowflake: 34 observed employer moves with this skill pairNumPy → MYSQL: 33 observed employer moves with this skill pairNumPysql: 67 movessql67 movesPower BI: 62 movesPower BI62 movesTableau: 51 movesTableau51 movespython: 50 movespython50 movesAWS: 39 movesAWS39 movesdocker: 38 movesdocker38 movessnowflake: 34 movessnowflake34 movesMYSQL: 33 movesMYSQL33 moves
How to read this chart · view counts

Each side is an independent set of observed employer moves, not the same people followed through three stages. Ribbon widths compare move counts within that side. Internal moves are not included.

The following position documents a skill that the preceding position does not. Skills must be linked to both positions, with clear dates and no overlap. One move can connect several skill pairs. These patterns suggest skills to explore; they do not establish prerequisites, when a skill was learned, or a higher skill level.

Source: Skillenai talent graph, historical career profiles. Historical descriptions and coverage can change. Only the leading published connections are shown.

Observed connections and move counts
ConnectionMoves
Before: python151
Before: sql110
Before: Power BI65
Before: Tableau61
Before: Excel49
Before: MYSQL36
Before: JavaScript36
Before: AWS32
After: sql67
After: Power BI62
After: Tableau51
After: python50
After: AWS39
After: docker38
After: snowflake34
After: MYSQL33

Roles most likely to require NumPy

Among roles with at least 20 postings in the same period.

RolePostings mentioning skill% of role postings mentioning skill
Mathematics Expert28100.0%
Quantitative Risk Analyst731.8%
Python Engineer1223.1%
Python Developer1521.4%
Quantitative Research Intern416.7%
AI Data Scientist315.0%
Bioinformatics Scientist315.0%
Senior Data Scientist414.8%
AI Security Researcher314.3%
Data & Analytics Engineer314.3%

Roles with the most NumPy postings

RolePostings mentioning skillShare of skill postings
Data Scientist33419.5%
Software Engineer1599.3%
Machine Learning Engineer1267.4%
Data Analyst794.6%
Data Engineer593.5%
ML Engineer583.4%
AI Engineer412.4%
AI/ML Engineer291.7%
Mathematics Expert281.6%
AI Trainer251.5%

Top companies posting jobs requiring NumPy

Employers ranked by indexed job postings in the last 90 days.

Top companies posting jobs requiring NumPy
CompanyPostings · 90 days
Anyone-ai57
OpenBrain30
Capital One29
General Motors28
Xometry28
Bosch21
GeVernova18
CACI15
Clarity Innovations15
Susquehanna International Group15

Job postings indexed over the past 90 days, grouped by resolved employer. Counts are postings, not hires. Companies without a published page appear without a link.

Top metros hiring for NumPy

NamePostingsShare
New York City553.2%
Bengaluru482.8%
London462.7%
Toronto452.6%
San Francisco301.8%
Pune221.3%
Singapore201.2%
Hyderabad191.1%
Boston160.9%

Skills commonly paired with NumPy

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How this was computed

Counts derive from the Skillenai jobs index over the 90 days ending 2026-09-30. Skills are resolved against the Skillenai canonical taxonomy, so the same entity is counted whether a posting writes 'Python', 'Python 3', or 'python'. Role prevalence divides postings mentioning NumPy by all postings for each role in the same window, ranking roles with at least 20 postings. Role distribution divides each role’s NumPy postings by all NumPy postings, including postings without a role. Shares need not sum to 100% for the displayed roles. Pages refresh weekly (or daily for the top-50 most-requested skills). Adjusted posting share: 0.7% to 0.7%. Demand share change is the relative percentage change between these adjusted shares. Each employer-and-ATS group has at least 10 postings in each 90-day window; its earlier posting count supplies the same weight in both windows. The panel includes 2,596 identified employers and covers 68% of earlier and 72% of latest indexed postings. Windows: 2026-06-02 to 2026-08-31 and 2026-06-30 to 2026-09-28 (UTC; end dates excluded). The windows overlap by 62 days. Dates reflect indexing, not the employer’s posting date. This measures posting mix, not total hiring or market-wide demand. Matching excludes entrants and exits; changes in crawl completeness within an employer or ATS can still affect the result.

source
Skillenai jobs index, deduplicated daily
entity_id
7be37725c7a4c5c7
data_as_of
2026-09-30
window_days
90
Hiring engineers who use NumPy?

The demand, skills, and geo numbers on this page come from the same Skillenai labor market index that powers our API. Use it for compensation benchmarking, hiring-competition analysis, and skill-adoption tracking.

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Compiled by Jared Rand · Data sourced from the Skillenai labor market index