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Applied AI Engineer

Role overview

Qualifications

  • Strong foundation in machine learning and modern neural network architectures
  • Hands-on experience with training, fine-tuning, or deploying ML models
  • Ability to write clean, production-quality code
  • Comfort working across abstraction layers (model → infra → product)

Responsibilities

  • Build and ship AI features end-to-end (model → system → user experience)
  • Design and iterate on prompts, tools, memory, and agent workflows
  • Turn raw model outputs into structured, reliable, and predictable behaviors
  • Debug issues across the full stack (model, orchestration, infra, UX)

Key facts

Hard skills

Other skills

  • Problem Solving
  • Collaboration

About the company

Bjak logo

Bjak

Insurance

Bjak is focused on providing access to affordable and sustainable financial services for people in ASEAN. Headquartered in Malaysia, Bjak is the largest insurance portal in Southeast Asia. Our main portal, Bjak.com, helps millions find the insurance policy with the best value and highest coverage for them. Using technology, our team's core strengths are in problem solving and navigating the most complex regulations and environments, creating some of the most innovative products in the world. For instance, we are the first platform globally to simplify and offer investment-linked life and health insurance online, coupled with an instant talk-to-agent service. Our investments in technology such as Custom API, blockchain, trading systems and data science is to enable easy access to financial services, that were previously inaccessible or difficult to understand. If you enjoy building cutting edge platforms and ecosystems to give equal access to financial services for the masses - Speak to us.

Company details

Company typeScaleup
IndustryInsurance
Company size51 - 200

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Job description

About ActAI

There are over 5 billion users using basic applications today such email, notes, tasks, calendar and they're not AI-native. Our mission is to build proactive applications for anyone in the world, who are not used to complex prompting. We aim to bring intelligence to conversations, errands, organising and workflows, with minimal to no prompting.

Our product focuses on achieving high reliability for long-running workflows, persistent context, and real-world task completion. We believe products will greatly reduce hallucinations.

Our objective is to organise anyone's life, allowing us all to spend time on valuable and meaningful things.

Role

As an Applied AI Engineer, you will turn model capabilities into real product behavior. You will own problems end-to-end, from shaping model behavior, to building the systems around it, to ensuring it performs reliably in production.

This role sits at the intersection of machine learning, systems, and product, focusing on making AI actually work for users, not just in demos, but in real-world usage.

 

Focus

  • Build and ship AI features end-to-end (model → system → user experience)

  • Design and iterate on prompts, tools, memory, and agent workflows

  • Turn raw model outputs into structured, reliable, and predictable behaviors

  • Debug issues across the full stack (model, orchestration, infra, UX)

  • Optimize for latency, cost, and production reliability

  • Develop lightweight evaluation frameworks to measure real-world performance

  • Work closely with product and engineering to translate ambiguous problems into working systems

 

Tech Stack

  • Python

  • PyTorch / JAX

  • LLMs (OpenAI-style APIs, LLaMA, Qwen, etc.)

  • Inference / serving (e.g. vLLM)

  • Vector DB

 

Ideal Experience

  • Strong foundation in machine learning and modern neural network architectures.

  • Hands-on experience with training, fine-tuning, or deploying ML models

  • Ability to write clean, production-quality code

  • Comfort working across abstraction layers (model → infra → product)

  • Strong problem-solving skills in ambiguous, fast-moving environments

  • Bias toward shipping, iteration, and continuous improvement

 

Outcomes

  • ML models in production meet expected accuracy, latency, and reliability targets.

  • Production issues are identified quickly, debugged effectively, and root causes addressed.

  • Data pipelines, training loops, and inference systems are robust, reproducible, and maintainable.

  • Collaborates effectively with engineers, product, and research teams to deliver reliable ML-powered features.

  • Iterations on models and systems are driven by real-world signals and measurable improvements.

 

How We Work

The best products today in the world were built by small, world class teams. We make decisions collectively, move at rapid speed, striking a balance between shipping high quality work and learning. Joining our team requires the ability to bring structure, exercise judgment, and execute independently. Our goal is to put in hands of our users a truly magical AI product.

 

Interview process

If there appears to be a fit, we'll reach to schedule 3, but no more than 4 interviews.

Applications are evaluated by our technical team members. Interviews will be conducted via virtual meetings and/or onsite.

We value transparency and efficiency, so expect a prompt decision. If you've demonstrated the exceptional skills and mindset we're looking for, we'll extend an offer to join us. This isn't just a job offer; it's an invitation to be part of a team that's bringing AI to have practical benefits to billions globally.

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MR

Marcus Rivera

Chief Revenue Officer

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