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Forward Deployed AI Analyst

Role overview

Qualifications

  • Seniors, recent graduates, and early-career candidates
  • Demonstrated ownership in projects or leadership roles
  • Technical experience in programming/data-analysis languages
  • Experience with data analysis, process mining, or agile delivery

Responsibilities

  • Train and shadow for the first month, then handle one workflow end to end
  • Interview client SMEs, read documents, and map systems during discovery tasks
  • Propose automation solutions and collaborate with clients to write specs
  • Build prototypes and manage rollouts, measuring productivity and ROI

Key facts

Hard skills

Other skills

  • Spreadsheets
  • Team Leadership

About the company

Makai Labs logo

Makai Labs

Artificial Intelligence & Machine Learning Services

Unknown

Company details

IndustryArtificial Intelligence & Machine Learning Services
Company size11 - 50

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Job description

Makai Labs builds AI systems that automate real work inside companies. As a Forward Deployed AI Analyst, you will train with Makai’s engineering, product, and client teams, then embed in one of our client engagements to find the workflows worth automating and build AI agents that handle them. You will work directly with the people who run the business, and your work is done when their teams rely on what you built.

This is an early-career role. You will see how a company actually runs from the inside, rapidly become a subject matter expert, and iterate on prototypes to improve their workflows.

Responsibilities

You will spend about your first month in training and shadowing, then take one workflow end to end alongside a Makai lead before working more independently.

Engagements vary, but most follow the same arc. You start by learning how the work is done today. Discovery tasks include interviewing client Subject Matter Experts (SMEs), reading the documents they work from, and mapping the systems involved. Based on this discovery, you propose what to automate, work with the client team to write the spec, and build a prototype on Makai's platform. Makai engineers support the technical work throughout. If the prototype holds up with client practitioners, you run the rollout and measure productivity and ROI.

Not every project reaches every stage. Some end at discovery, and some prototypes don't survive user testing. Part of the job is figuring out what won’t work, so that we can focus our effort optimally.

Over time, Analysts will get put onto career development tracks toward AI engineering, product and implementation, or engagement leadership, depending on performance and interest.

Example Problems

  • A finance team spends days manually reading data from PDFs, entering them into giant spreadsheets, running internal formulae and drafting reports based on these results.

  • A field operations team spends hours manually scheduling and resolving conflicts for employees using multiple disconnected platforms.

  • A spreadsheet process has become a business-critical system without clear ownership or controls.

Qualifications

We are looking for seniors, recent graduates, and early-career candidates who want a path toward company leadership. An ideal candidate has shown ownership both inside and outside the classroom. That could mean you:

  • Built a product, tool, model, startup, research system, or internal process.

  • Led a club, team, lab effort, athletic group, event, or high-pressure project.

  • Took a messy internship project and turned it into something people used.

Technical Profile

  • Python, JavaScript, SQL, or another programming/data-analysis language.

  • APIs, workflow automation, backend services, internal tools, or scripting.

  • LLMs, retrieval, agents, structured outputs, prompt design, or AI evaluation.

  • Data analysis, spreadsheets, dashboards, process mining, or financial/operating models.

  • Product specs, user stories, QA testing, Jira, Azure DevOps, or agile delivery.

  • Research, internships, startups, team leadership, athletics, or other high-accountability work.

Very technical candidates may be considered for AI engineering or solutions engineering paths. Product- and operator-oriented candidates may be considered for implementation, product, or business analysis paths.

Position Details

  • Location: Remote-friendly, with Eastern Time overlap preferred.

  • Travel: Occasional travel may be required for training, client work, or company visits.

  • Start timing: Paid IAP micro-cohort (January 2027) and summer 2027 full-time starts.

  • Exceptional recent alumni may be considered for an earlier full-time start.

  • Sponsorship: No VISA sponsorship available at this time.

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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