AI & Data Specialist

Mekari (PT. Mid Solusi Nusantara)

Jakarta Pusat

On-site

IDR 350,000,000 - 600,000,000

Full time

6 days ago
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Job summary

Mekari is seeking an AI/Data Builder to own AI, ML, LLM, data, and non-deterministic system quality. You will stay close to users and ship end-to-end, user-accessible AI/data products, features, modules, and decision-support capabilities.

You will be accountable for probabilistic behavior, data quality, model behavior, and guardrails. The role focuses on building trustworthy AI capabilities, measuring outcomes, and continuously improving systems while collaborating with Platform and Product

Qualifications

  • 2-3+ years in full-stack engineering or applied software development using AI/data use cases.
  • Experience with AI, ML, LLM, RAG, data, analytics, and intelligent product systems.
  • Proficiency in prompt, context, retrieval, model, orchestration, and data-system design.
  • Experience with data pipelines, data quality, freshness, lineage, completeness, and correctness.
  • Demonstrated ability with evaluation design, golden datasets, regression evals, scenario tests, and human review.
  • Working knowledge of grounding, hallucination control, refusal behavior, guardrails, safety, and trust.
  • Experience monitoring for drift, quality degradation, latency, cost, user feedback, and production behavior.
  • Track record shipping AI/data-powered products, features, modules, workflows, services, or decision-support capabilities.

Responsibilities

  • User & product alignment. Stay close to workflows, feedback, and production behavior to define good vs. unacceptable AI behavior.
  • Build & ship. Develop AI services, ML models, LLM workflows, RAG systems, data pipelines, and model integrations as real product capabilities.
  • Configure & construct. Own prompts, retrieval logic, model configs, orchestration flows, and data transformations.
  • Validate quality. Test behavior through eval sets, golden datasets, scenario/adversarial tests, regression evals, and human review.
  • Manage risk. Handle grounding, hallucination, bias, privacy, latency, cost, and drift concerns.
  • Release responsibly. Ship with guardrails, fallbacks, monitoring, and human-in-the-loop controls.
  • Iterate. Continuously improve prompts, models, and pipelines based on real usage data.
  • Cross-functional collaboration. Partner with Platform Builders and Product Builders for release readiness.

Skills

AI systems
Full-stack engineering
Prompt engineering
Data pipelines
Model evaluation
Trust & safety
Production monitoring

Tools

RAG systems
LLM workflows
Data orchestration

Job description

Mekari is Indonesia's no. 1 Software-as-a-Service (SaaS) company. With our ecosystem of software solutions—including Mekari Jurnal, Mekari Talenta, Mekari Qontak, and Mekari Flex, we aim to facilitate entrepreneurs and leaders as they accelerate the digital transformation of their businesses.

In our 10+ years of journey we have reached over 3 Million platform users, and we're not planning to stop any time soon. We need more people like you: builders and owners with calculated ambition who are ready to #ElevateThroughImpact and raise Indonesia's software standard.

Job Description:

The AI/Data Builder is an AI-native Builder who owns AI, ML, LLM, data, and non-deterministic system quality. This role expects to stay close to users and ships end-to-end, user-accessible AI/data products, features, modules, workflows, services, and decision-support capabilities. What sets this role apart is deeper accountability for the quality of probabilistic behavior, data quality, model behavior, evaluation systems, AI trust, guardrails, and continuous improvement. The mission: build, ship, measure, and improve AI/data capabilities that are useful, safe, trusted, measurable, and valuable for users.

Responsibilities:
  • User & product alignment. Stay close to workflows, feedback, and production behavior to define what "good vs. unacceptable" AI behavior looks like for the use case.
  • Build & ship. Develop AI services, ML models, LLM workflows, RAG systems, data pipelines, and model integrations as real product capabilities (not just experiments).
  • Configure & construct. Own prompts, retrieval logic, model configs, orchestration flows, and data transformations.
  • Validate quality. Test behavior through eval sets, golden datasets, scenario/adversarial tests, regression evals, and human review.
  • Manage risk. Handle grounding, hallucination, bias, privacy, latency, cost, and drift concerns.
  • Release responsibly. Ship with guardrails, fallbacks, monitoring, and human-in-the-loop controls.
  • Iterate. Continuously improve prompts, models, and pipelines based on real usage data.
  • Cross-functional collaboration. Partner with Platform Builders (deployment, agent tuning) and Product Builders (user value, trust boundaries, release readiness).
Preferred Traits
  • Experience collaborating with Platform Builders on agentic build workflows, especially agent tuning, evaluation, and improvement.
  • Comfort defining risk tolerances and behavior standards for non-deterministic systems (i.e., systems where output varies based on models, prompts, retrieval, data, context, or user input, and can't be verified by exact-output tests alone).
Mindset
  • A builder who takes deep ownership of AI/data behavior quality — someone who treats evaluation, monitoring, and continuous improvement as core parts of shipping, not afterthoughts, and who partners naturally with Product and Platform counterparts (this role isn't research-only, model-only, or analytics-only — it's about shipping real AI/data-powered capability and managing its quality in production).
Requirements:
  • 2 - 3+ years in full-stack engineering or applied software development using AI/data use cases.
  • Experience with AI, ML, LLM, RAG, data, analytics, and intelligent product systems.
  • Proficiency in prompt, context, retrieval, model, orchestration, and data-system design.
  • Experience with data pipelines, data quality, freshness, lineage, completeness, and correctness.
  • Demonstrated ability with evaluation design, golden datasets, regression evals, scenario tests, and human review.
  • Working knowledge of grounding, hallucination control, refusal behavior, guardrails, safety, and trust.
  • Experience monitoring for drift, quality degradation, latency, cost, user feedback, and production behavior.
  • Track record shipping AI/data-powered products, features, modules, workflows, services, or decision-support capabilities.
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