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Alxafrica1d ago
New

LLMOps Engineer

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Quick Summary

Requirements Summary

solid Python and a data inclination, comfortable shaping and analysing messy LLM-generated data. Decomposition: the ability to look at an AI product and decompose it into success and failure metrics.

Technical Tools
OtherEngineer

ALX Africa, a non-profit organisation under the ALX Foundation, is dedicated to unlocking the potential of Africa's digital future. Formerly part of Sand Tech Holdings, we've embarked on an independent journey to provide world-class tech skills training and career acceleration programmes. Our mission is to bridge the digital divide, upskill and re-skill talent, and create a generation of innovative leaders. By 2030, we aim to empower 2 million Africans to secure sustainable tech careers.

With hubs in 8 cities across Africa and counting, we provide safe access to quality learning and a dedicated network of expert instructors. Our innovative programmes equip learners with the practical skills and knowledge needed to succeed in today's rapidly evolving tech industry. Through a combination of rigorous coursework, industry partnerships, and hands-on projects, we prepare our students for in-demand roles in software engineering, data science, and cybersecurity.

  • Providing young professionals with access to the most in-demand tech skills that will power the future.
  • Empowering the next generation of technology innovators, entrepreneurs, and business leaders through challenging, real-world coursework.
  • Building a lifelong, impactful community of tech professionals that support them at all stages of their career journey. 
  • 347k+ graduates since 2020
  • 257k youth in work
  • 31k youth starting own ventures
  • 60k youth in jobs created by entrepreneurs

 Visit our website www.alxafrica.com to learn more about our digital revolution.

Project A is ALX’s AI learning platform — a set of LLM products used by learners. Every one generates a stream of LLM data, and every one has hypotheses baked into it about what “working” means. The LLMOps Engineer owns the analyzer function: turning that stream into an honest answer about whether the products work. Take RAG as one example — documents must be stored accurately, fetched accurately, and fetched in the right mixture: three separate failure modes, each needing its own eval. Every product decomposes like that. This is a junior-to-mid role with a deliberate growth path: you start close to the technical lead’s designs and grow into full ownership of the function.

You will work in collaboration with Anthropic Engineers, a cross functional  team of AI engineers, product managers and data scientists to design world class learning experiences.

Responsibilities

~1 min read
  • Build and run eval suites per product, decomposed by failure mode, running on schedule and on every release — regression testing so nothing ships if it broke what worked.
  • Keep evals cost-effective as the product line grows.
  • Own the reporting loop — findings from evals and platform data in front of the team and stakeholders, including surfacing unintended or problematic model behaviour before learners do.
  • Steward the core datasets the team depends on, including classified customer-support data.
  • Partner with the AI Product Manager on instrumentation — they instrument the product, you build the evals over what is captured. This is a measurement role, not infrastructure — no model hosting or serving.

Requirements

~1 min read
  • Python & data: solid Python and a data inclination,  comfortable shaping and analysing messy LLM-generated data.
  • Decomposition: the ability to look at an AI product and decompose it into success and failure metrics.
  • Eval landscape: familiarity with Langfuse, RAGAS, DSPy, or similar — depth in one, awareness of the rest. These tools are learnable; we hire the fundamentals underneath them.
  • Desirable (not required): experience keeping evals cheap at scale; dashboarding and reporting; classical statistics.
  • You want to own a function, not execute tickets.
  • You communicate well and like collaborating,  you will support every builder on the team.
  • You can point to any project, even a small one, where you measured an AI system honestly.
  • Courage: Willingness to speak up, challenge the status quo, and embrace new challenges.
  • Humility: Openness to learning, seeking help when needed, and a focus on serving others.
  • Adventure: A passion for setting ambitious goals, tackling difficult tasks, and finding joy in the journey.
  • Initiative: Proactive problem-solving, a sense of ownership, and a willingness to go above and beyond.
  • Resilience: The ability to bounce back from setbacks, persevere through challenges, and emerge stronger.

This role is a full-time position.

Nice to Have

~1 min read

The preferred time zones are GMT+2.

 

Due to the considerable amount of virtual working and interaction with colleagues and customers in different physical locations internationally, it is essential that the successful applicant has the drive and ethic to succeed working in small teams physically but in larger efforts virtually. Self-drive to communicate constantly using web collaboration and video conferencing is essential. As an employee, you will be encouraged to continually develop your capability & attain certifications to reflect your growth as an individual.

Location & Eligibility

Where is the job
Worldwide
Fully remote, anywhere in the world
Who can apply
Same as job location

Listing Details

Posted
August 3, 2026
First seen
August 3, 2026
Last seen
August 5, 2026

Posting Health

Days active
0
Repost count
0
Trust Level
67%
Scored at
August 3, 2026

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LLMOps Engineer