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Home›Standards›Digital apprenticeships›Data Analyst
L4Apprenticeship8011 approved providers

The Level 4 Data Analyst, and the 11 providers delivering it.

Collect, organise and study data to provide business insight.

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At a glance

How long24 months
Off-the-job training20% (~1 day/week)
Funding band£15,000 (levy-funded, or 95% co-funded)
Approved providers11

About this apprenticeship

What this apprenticeship covers

Apprentices learn to collect, clean, transform and analyse data to support business decision-making. The programme covers the full data analysis lifecycle, from gathering requirements through to presenting findings to stakeholders. Key areas include data classification, database structures, statistical methodologies, predictive analytics, and data quality risk management. Apprentices also develop an understanding of data legislation, security standards, and organisational data architecture, ensuring they handle data compliantly and safely throughout every stage of their work.

Day-to-day responsibilities

Day-to-day work involves querying databases, cleaning datasets, identifying trends and producing outputs that answer specific business questions. Apprentices regularly engage with internal stakeholders, such as finance, HR or marketing teams, to understand their data needs and translate those into analysis plans. They use analytical tools and statistical methods to build reports or models, flag data quality issues, and present conclusions in a format suited to the audience. Keeping up with changes in data tools and techniques is also part of the role.

Career outlook

Completing this apprenticeship typically leads to roles such as data analyst, junior analyst, or departmental data analyst, with common specialisms in marketing, HR, operations or finance. Employers span virtually every sector, including retail, banking, logistics, local government, healthcare and media, as any organisation that uses data to make decisions is a potential employer. With experience, analysts often progress into senior analyst, data science or business intelligence roles, or move into data management and strategy positions.

11 approved providers

Sorted by achievement rate.

Corndel
Corndel
Employer: 4.0

Corndel is a UK-based strategic skills partner that helps employers use the Apprenticeship Levy to f...

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Cambridge Spark
Cambridge Spark
Employer: 4.0

Cambridge Spark is a specialist data and AI training provider that helps corporate and government or...

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Apprentify
Apprentify
Employer: 4.0

Apprentify is a specialist digital and tech apprenticeship and training provider that focuses on hel...

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Acorn Training
Acorn Training
Employer: 3.0

Acorn Training is a national training provider delivering apprenticeships, training, employability s...

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Apprentice Team
Apprentice Team
Employer: 4.0

Apprentice Team Ltd is a registered training provider delivering apprenticeships and work-based qual...

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Activate Learning
Activate Learning
Employer: 4.0

Activate Learning is a UK education group that delivers apprenticeships and vocational training thro...

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Cheshire College – South & West
Cheshire College – South & West
Employer: 2.0

Cheshire College – South & West offers apprenticeship and further education opportunities across its...

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Ada. National College for Digital Skills
Ada. National College for Digital Skills
Employer: 4.0

Ada, the National College for Digital Skills, is a specialist digital education provider offering bo...

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AKR Growth
AKR Growth
Employer: 4.0

AKR Growth is a social impact recruitment and training organisation that focuses on helping young an...

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ART Skills Centre
ART Skills Centre

ART Skills Centre is an online and onsite training platform that offers apprenticeship opportunities...

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ALS Training
ALS Training

ALS Training is a work-based learning provider specialising in apprenticeship and professional devel...

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Career outcomes

Roles after completion

Completers typically move into roles such as Data Analyst, Junior Data Analyst, Marketing Data Analyst, or Departmental Data Analyst. Some step into more domain-specific positions, for example HR Data Analyst, Finance Analyst, or Operations Analyst, depending on the sector they trained in. The standard also prepares people for Problem Analyst roles where the focus sits on diagnosing business issues through data rather than producing routine reporting outputs.

Progression paths

Within three to five years, analysts commonly advance to Senior Data Analyst or Lead Analyst, taking ownership of larger data projects and managing relationships with senior stakeholders. Beyond that, two tracks tend to open up. A leadership route leads toward Data Team Manager, Head of Data, or Analytics Manager. A specialist route leads toward roles such as Data Engineer, Business Intelligence Developer, or Data Scientist, usually supported by further qualifications or a relevant degree apprenticeship at Level 6 or 7.

Where these roles sit

Demand spans virtually every sector of the UK economy. Retail chains, NHS trusts, local authorities, logistics and distribution companies, financial services firms, media organisations, and defence contractors all hire at this level. Roles exist in small analytics consultancies delivering data services to clients, and in large in-house data teams within household-name employers. Both public sector organisations and privately owned businesses recruit at this grade, making it one of the more broadly applicable digital standards available.

How it's assessed

How the apprenticeship is assessed

Throughout the programme, apprentices build knowledge and practical skills while working in a real data analyst role. Learning happens on the job and through structured off-the-job training, covering areas such as data legislation, database design, statistical methods, and stakeholder communication. Before moving to final assessment, the apprentice and employer confirm readiness through a gateway check, which typically requires evidence that the apprentice can perform the role to the required standard across the full range of knowledge, skills, and behaviours. The final assessment then confirms occupational competence. Assessment models for many standards are currently being updated, so check the standard's gov.uk page for the current specification.

What learners need to prepare

Apprentices should gather workplace evidence throughout the programme rather than leaving it to the final months. Real analytical tasks, such as producing reports, cleaning data sets, or presenting findings to stakeholders, all generate material that supports the assessment. Keeping a consistent record of what was done, why, and what the outcome was makes the gateway process much smoother. Close communication with both the employer and training provider about progress against the knowledge, skills, and behaviours is the most reliable way to stay on track.

Choosing a provider

What good looks like

A strong provider for this standard will have an achievement rate above 65% on their FATP profile, ideally higher, and apprentice satisfaction scores that reflect genuine engagement rather than passive delivery. For a data analyst apprenticeship, the curriculum should cover current tools: SQL, Python or R, and at least one widely used visualisation platform such as Power BI or Tableau. Check whether the provider can show that tutors have recent, hands-on industry experience rather than a purely academic background. Employer satisfaction scores are particularly telling here, since the standard requires apprentices to work within real data architectures and deliver outputs to actual stakeholders.

Red flags to watch for

Be cautious if a provider cannot name the specific tools and languages covered in delivery, or if their materials reference legacy platforms no longer common in data roles. A high learner volume paired with a falling achievement rate warrants scrutiny, as does vague language about how apprentices practice statistical methodologies or predictive analytics. If off-the-job training is described in general terms with no clear link to real analytical projects, that is a problem. Providers unable to give examples of where alumni are working after completion should be pressed harder.

Questions to ask before you commit

  • Which specific tools and languages form part of the taught curriculum, and when were the materials last updated?
  • How do apprentices practise statistical and predictive analytics methods during the programme, and is that practice applied to real data sets or simulated ones?
  • What does off-the-job training look like week to week, and how is it structured around an apprentice's existing workplace responsibilities?
  • What is your current achievement rate for this standard, and how has it changed over the past two years?
  • Can you give examples of the kinds of roles and sectors where your completers have gone on to work?
  • How do you support apprentices in sectors where data governance and compliance requirements are particularly strict, such as healthcare or financial services?
  • What contact does the employer have with the training provider during the apprenticeship, and how are concerns escalated if progress slips?

Common questions

What are the entry requirements for the Data Analyst apprenticeship?

There are no nationally mandated entry requirements set by the apprenticeship standard itself. Most employers look for a reasonable level of numeracy and digital literacy, and some ask for GCSEs in maths and English. Apprentices must already be employed or be taken on for the role. If English and maths aren't at Level 2 already, the apprentice will need to achieve that before completing the programme.

How long does the Data Analyst apprenticeship take, and how does learning fit around work?

The typical duration is 24 months, though the actual length depends on prior experience and the employer's delivery model. Apprentices are employed throughout and apply their learning directly to live work. A portion of time must be spent on off-the-job training each week. Exact requirements are subject to change under current Skills England reforms, so check the latest specification on gov.uk for the current figure before planning delivery.

How is the Data Analyst apprenticeship assessed?

Before the end-point assessment, the apprentice must reach gateway, at which point the employer and training provider confirm the apprentice has met all knowledge, skills and behaviour requirements. Assessment methods for many standards are being updated under ongoing reforms, so the precise end-point assessment components should be confirmed on gov.uk. Broadly, the apprentice must demonstrate competence across data analysis techniques, data governance, stakeholder communication and presenting analytical outputs.

How does an employer pay for the Data Analyst apprenticeship?

The funding band for this standard is £15,000, which is the maximum that can be drawn from apprenticeship funding. Levy-paying employers use their digital apprenticeship service account. Non-levy-paying employers co-invest, currently paying 5% of the training cost with the government covering the rest. If you employ fewer than 50 people and take on an apprentice aged 16 to 18, the government meets the full training cost. Costs above the funding band cap must be covered by the employer directly.

What does a Data Analyst apprentice actually do day to day?

Day-to-day work involves gathering requirements from internal teams or external clients, extracting and cleaning data sets, applying statistical and predictive methods, and producing outputs that support business decisions. An apprentice might analyse staff retention figures for HR, break down sales data for a commercial team, or investigate service performance metrics. They handle data in line with GDPR and internal security policies, flag quality risks, and communicate findings to stakeholders at different levels of the organisation.

What can a Data Analyst apprentice do after completing the programme?

Completers typically move into a confirmed data analyst role or step up to a senior analyst position. From there, common progression routes include data engineering, business intelligence analysis, or data science, often supported by further qualifications at Level 6 or Level 7. The analytical, statistical and data governance skills built during the programme are transferable across sectors, so career options span finance, retail, healthcare, government, logistics and most other data-driven industries.

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Curated by Alex Lockey, FATP founder and editor. Last reviewed: 10 May 2026.

Sources include the apprenticeship's official specification on apprenticeships.gov.uk, Skills England guidance, IfATE archive records, DWP funding bands, and provider data sourced directly from the public Apprenticeship Provider and Assessment Register (APAR). Standard reference: 80.

Some sections on this page were drafted with AI assistance from published source data and reviewed by a human editor before publication. See our editorial methodology for how we maintain this content. Spotted something out of date? Tell us.

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