Analytics software, compared
Most finance teams choose between spreadsheets, a BI suite, a planning platform and an enterprise data platform. Each is right for something. This page sets them against the questions finance teams actually ask, and shows what each needs before the first answer.
Excel or Google Sheets, with exports pasted in and formulas rebuilt each period. Suits a one-off question that will not come back.
Business intelligence tools for modelling data, building dashboards and sharing reports. Suits an organisation standardising reporting across many teams.
Platforms for budgeting, forecasting and scenario planning, connected to the ledger and other systems. Suits a finance team replacing spreadsheet budgeting across the organisation.
Platforms that integrate an organisation's systems into one governed model and build applications and AI on top of it. Suits a programme to connect many systems across the whole organisation.
Reads the exports finance teams already produce and answers the questions below, with every figure computed by our tools and checked. Set up for you within a week.
| Time to the first answer | What it needs | Who builds it | Where “why” comes from | |
|---|---|---|---|---|
| Spreadsheets | Hours, and the same hours again every month | An analyst's time each period | An analyst, by hand, every period | Whatever the analyst builds that month, checked by whoever has time |
| BI suites | Usually days to weeks: a data model built, measures written in the tool's own language, reports designed | A clean data source or warehouse, a data model, and someone who can write the tool's measures | A BI developer or analyst, often in a central data team | A dashboard shows what changed; explaining why is usually a new report someone builds |
| FP&A and planning platforms | Usually months: models built, the ledger and other systems integrated, often with an implementation partner | Model builders, integration with the ERP or general ledger, and an implementation project | Certified model builders, internal or from a partner | Built to produce the plan; explaining the month's variance often goes back to a spreadsheet |
| Enterprise data platforms | Usually weeks to months: sources integrated, a data model or ontology built, then applications on top | Integration work across source systems, a data model, and engineers who build and maintain it | Data engineers, often with the vendor's own engineers or a partner | Possible once the model is built, as an application someone designs for it |
| Covirage | Minutes on a file you already export; set up for you within a week | The exports your systems already produce. No warehouse, no modelling language, no data team | We map the columns once and set the dashboard up for you | An explain block splits every change into its causes; the lines sum to the change, and each opens to its rows |
These are typical patterns, not a verdict on any product. Each kind of tool is right for somebody; the table shows who does the work before finance teams get an answer.
| The question | The measure | What Covirage returns |
|---|---|---|
| What is driving my cost increase? | Cost bridge | The change split into headcount, rates and pay, volume, timing, one-offs and other, summing exactly, with the cost centres behind each. |
| Which cost centres are over budget, and on what? | Cost centres over threshold | Cost centres over the threshold with the largest line and the owner. |
| How much of the variance is timing? | Timing in the variance | Items that landed in a different month and will reverse, so the real variance is separate. |
| Where is headcount above plan? | Headcount against plan | Actual against planned FTE by cost centre and type, and whether the cost is numbers or rates. |
| Will the year land? | Run rate | Trailing run rate against the full-year budget, by function. |
| Who forecasts high or low, every month? | Forecast accuracy and bias | Signed forecast error by cost centre, with the consistent ones. |
Every one is an export your systems already produce. Every way data can arrive is listed on the upload page.
Each page sets out what the product is built for, where it is strong, and when a lighter option fits better.
Alteryx alternatives · Domo alternatives · Palantir Foundry alternatives
Databricks AI/BI alternatives · Looker alternatives · Metabase alternatives · Power BI alternatives · Qlik Sense alternatives · Sigma alternatives · Sisense alternatives · Tableau alternatives · Zoho Analytics alternatives
Adaptive Planning alternatives · Anaplan alternatives · Pigment alternatives · Planful alternatives · Vena alternatives
It depends on what is in place. With a warehouse and a data team, a BI suite or a data platform gives the most control. With exports and a question that recurs every month, a tool that reads the files and answers the question directly gets there sooner. The table on this page sets the options side by side for the questions finance teams ask.
Not to start. The measures on this page are computed from exports finance teams already produce: ledger actuals, budget, forecast, headcount. A warehouse helps when many systems must be joined continuously; it is not a prerequisite for the first answer.
It varies by approach: usually days to weeks: a data model built, measures written in the tool's own language, reports designed for a BI suite, usually months: models built, the ledger and other systems integrated, often with an implementation partner for a planning platform, and minutes on a file with Covirage, set up for you within a week.
In Covirage the AI model never does the arithmetic. It chooses the measure and explains the result; our tools compute every figure and check that the totals reconcile before anything is shown.
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Bring an export you already produce. The data map opens next, every column mapped once, and the first question is answered in minutes. Free, in your browser, no account. Or talk to us and we will set it up for you.