Is Data, Analytics & AI a Good Job Market in Austin-Round Rock-San Marcos, TX?

Produced by Callings.ai on April 22, 2026

Executive Verdict

Market rating: competitive | Confidence: High

Austin is still a live market for Data, Analytics & AI, with more than 75 postings across more than 75 companies over the last 90 days and current openings at DFPS, UT Austin, and ERS.[11][12][13][14] Pay is attractive for qualified candidates: local data scientist wages run from $86,382 at the 25th percentile to $157,290 at the 75th percentile, while posted salaries across the broader category center on about $120k to $160k.[15][16] But the market is not easy: about 50% of sampled postings are senior, only about 10% are entry-level, about 15% are remote, and local information employment was down -4.3% year over year even as total metro payrolls rose 1.4%.[17][18][9][19] This is a competitive market, not a shrinking one.

Best positioned: Mid-to-senior candidates who can show Python and SQL plus machine learning, dashboarding, and pipeline work have the best odds, especially if they are open to on-site or hybrid Austin roles.[20][12][13][17][18]

Main caution: Do not assume Austin's tech brand means easy entry: entry roles are a small slice of the market, remote roles are limited, and typical active postings have been open around 56 days.[17][18][21]

What Changed Recently

What This Means for You

Entry-Level Candidates

Difficulty: High.

Best target: Aim at BI analyst, junior data analyst, reporting analyst, program analyst, and university or state-agency roles where dashboards, SQL, and business communication matter more than deep model research.

Biggest mistake: Applying as a generic 'data person' without a portfolio that proves you can answer a business question, clean data, and ship a dashboard.

Next step: Build three artifacts fast: one SQL case study, one Tableau or Power BI dashboard, and one Python notebook that turns raw data into a recommendation.

Mid-Career Candidates

Difficulty: Moderate.

Best target: Target senior analyst, data science analyst, analytics engineer, and ML-enabled analyst roles tied to revenue, operations, healthcare, or public programs.

Biggest mistake: Leading with tools only instead of showing measurable outcomes like forecast accuracy, retention lift, fraud reduction, or process savings.

Next step: Rewrite your resume around 4-6 business outcomes, then create separate application versions for analyst, analytics-engineer, and applied-data-science roles.

Career Switchers

Difficulty: Moderate to high.

Best target: Use domain adjacency: finance into revenue or risk analytics, healthcare into clinical or ops analytics, supply chain into logistics analytics, and public policy into program data roles.

Biggest mistake: Trying to compete head-on for AI engineer titles before you have shipped real projects with data pipelines or model deployment.

Next step: Pick one domain you already know, then build a portfolio project in that domain so your subject knowledge becomes an advantage instead of a footnote.

Salary Reality

high pay highly concentrated

The clearest local observed pay data is for data scientists, where the Austin wage distribution runs from $86,382 at the 25th percentile to $122,429 at the median and $157,290 at the 75th percentile as of February 2026.[15] That is occupation-specific government data. Separate from that, posted salaries across the broader local Data, Analytics & AI category center on about $120k to $160k, with a broader 25th-75th band of about $90k to $190k; treat that as directional because it reflects a partial postings sample rather than all hires.[16]

Austin can pay very well, but the strongest money is concentrated in more technical sub-roles than basic reporting. Recent local openings emphasize machine learning models, dashboards, Databricks, ETL, and data pipelines rather than spreadsheet-only analysis.[12][13][20]

The upside comes with tradeoffs: about 50% of local postings skew senior, only about 15% are remote, and typical active postings sit open around 56 days, which signals a market where employers can wait for close matches.[17][18][21]

Best-paying path: The best-paying path is usually the intersection of data science and applied AI: local data scientist pay reaches $157,290 at the 75th percentile, while national 2026 guides place mid-to-senior data scientists around $138,054-$194,480 and AI engineers around $167,274 on average.[15][22][23]

Caution: Do not read top-end figures as normal outcomes. The local government example in this bundle is a Data Analyst V role paying $6,377.50 - $8,581.66 monthly, which is well below elite AI-engineer numbers and a reminder that title, sector, and seniority drive pay more than the category label alone.[12]

Where the Opportunities Are Concentrated

Real opportunity is spread across a long tail rather than one giant employer. In the local postings sample, hiring is fragmented, with more than 75 postings across more than 75 companies; the most consistently active names include Apple, RevOps Advisor, and News Corp at around 5 postings each.[11][24][10] The industry mix leans heavily toward information technology and technology, which together account for about 75% of sampled postings, with smaller pockets in engineering, financial services, and media and information services.[32] At the same time, some of the most concrete live openings in Austin are outside classic big-tech product teams. DFPS is hiring for Databricks, ETL, and Tableau or Power BI work, UT Austin is recruiting for advanced analytics, machine learning models, and data pipelines, ERS has a live data analyst role, and eBay is hiring a Senior Data Science Analyst on its Shipping team.[12][13][14][28] That makes public sector, university, healthcare-adjacent, and operations analytics worth real attention, not just tech brands. Sector employment trends point to where demand may hold up better. Local financial activities employment rose 3.9% year over year, professional and business services rose 1.6%, and education and health services rose 2.6%, while information fell -4.3%.[29][33][34][9] For job seekers, that means customer, operations, risk, and domain analytics may be easier entry points than pure platform-company hiring.

Where to focus: Prioritize roles where you can show Python plus SQL plus one delivery layer such as dashboards, ETL, or ML pipelines, and widen your target list beyond consumer tech to state agencies, universities, healthcare, and finance.

Skills and Credentials Worth Pursuing

Adjacent Roles to Consider

30 / 60 / 90-Day Plan

First 30 Days

Days 31-60

Days 61-90

Methodology and Confidence

This March 2026 report was generated on April 22, 2026. Latest direct national data: April 2026. Latest direct Austin-Round Rock-San Marcos, TX data: April 2026.

Confidence: Overall confidence: High. Based on 21 direct local occupation data points and 48 total local evidence items with recent coverage.

Limitations

References

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  4. Federal Reserve Economic Data. Consumer Price Index for All Urban Consumers: All Items in U.S. City Average · 2026-03 · fred.stlouisfed.org
  5. Federal Reserve Economic Data. Average Hourly Earnings of All Employees, Total Private · 2026-03 · fred.stlouisfed.org
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