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Tech Lead (Data Platforms) | Ingestion, Discovery, Compliance
Tech Lead (Data Platforms) | Ingestion, Discovery, Compliance

Tech Lead (Data Platforms) | Ingestion, Discovery, Compliance at LH2 AI Labs · Bengaluru (Bangalore) · 8 - 12 years · ₹50L - ₹100L / yr · Bootstrapped · Posted 30 Sep 2026

LH2 AI Labs's logo

Tech Lead (Data Platforms) | Ingestion, Discovery, Compliance

Sushmita Mahato's profile picture
Posted by Sushmita Mahato
8 - 12 yrs
₹50L - ₹100L / yr
Bengaluru (Bangalore)
Skills
skill iconPython
Software engineering
Data engineering
OAuth
RESTful APIs
gitleaks

About LH2 AI LabsLH2 AI Labs is an applied research lab solving data platform and curation challenges for foundation model development. We serve every frontier AI lab with the mission of delivering the best data to power the best models.


Our customers are the ones building the foundation models themselves and our work sits directly in the loop of how those systems improve. This is a rare opportunity to join a company at a defining moment in AI.


About the role:

This is a full-time, hands-on role where you will own the core infrastructure and systems that enable us to discover customers' data landscape, handle sensitive data like names, address securely and to clean and catalog them into training-ready datasets.

That path covers connectors and on-prem agentic discovery components, secrets and PII scrubbing, scale and cost efficient ingestion and clearance for use in model training. You lead a small team of 3-4 engineers and raise the quality bar in your pod.


What you'll own

  • Connectors and extraction - You'll build connectors for common SaaS and databases (Google Workspace, Slack, Postgres/MySQL, Jira, MongoDB) and for specific tools such as Razorpay, GreytHR, Keka, Zoho and LeadSquared. The rule is to build only where no good open-source connector or clean export exists.
  • On-prem scanning - You'll build a CLI or agent that runs at the data owner's end to sample and estimate the value of their data without shipping all of it to us.
  • Clearance pipeline - Secrets detection across full git history, fail-closed. PII redaction for code and conversational data, including Indian identifiers (PAN, Aadhaar, GSTIN, IFSC, UPI). Measurable recall and precision.
  • Lineage - Every output record must trace back to its raw source, and every lot must be revocable.
  • Delivery - Packaging, sampling for buyers, and supporting the supply and BD teams on data questions.


You have

  • 8+ years in backend or data engineering, with at least 2 years leading up to 4 or more engineers.
  • You've built ingestion or ETL pipelines that run in production.
  • Hands-on work with sensitive data such as PII, financial or health data, including redaction, masking or access controls.
  • The judgment to decide what to build and what to adopt.


Nice to have

  • Experience with Presidio, gitleaks/TruffleHog, dlt or Airbyte.
  • Knowledge of DPDP, GDPR, HIPAA or SOC 2.
  • You've shipped software that runs in customers' environments.


This is not a pure people-management role. You'll write code, review everything, and personally own the hardest problems in the pod.

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About LH2 AI Labs

Founded :
2026
Type :
Product
Size :
0-20
Stage :
Bootstrapped

About

LH2 AI Labs supplies frontier AI developers and enterprises with proprietary, expert-sourced training data across the full model lifecycle. Public internet data is exhausted as a training signal. Our edge is simultaneous access to verified domain experts and proprietary, rights-cleared datasets across verticals drawn from populations and domains systematically underrepresented in every existing training corpus.

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Candid answers by the company

What is the location preference of jobs?

Bangalore

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About PortOne


PortOne is building the reconciliation and data intelligence layer for payments across Korea and international markets. We are a Series B startup backed by Softbank and Hanwa Capital, powering multi-billion dollars in annualised settlement volume for 2,000+ merchants across Korea, Thailand, Singapore, Indonesia, and beyond.

We are building AI-native products for leading brands — intelligent automation layers on top of complex financial data pipelines. If you want to work at the intersection of fintech, data engineering, and applied AI, this is your role.



Culture and Values


* You will be joining a team that stands for making a difference.

* You will be joining a culture that identifies more with Sports Teams rather than a 9 to 5 workplace.

* Your will have peers who are/have

** Highly Self Driven with A sense of purpose

** High Energy Levels - Building stuff is your sport

** Ownership - Solve customer problems end to end - Customer is your Boss

** Hunger to learn - Highly motivated to keep developing new tech skill sets



Your Work Ethic


* You are an athlete and building apps is your sport.

* Your passion drives you to learn and build stuff and not because your manager tells you to.

* You obsess over correctness — a bug in a settlement figure or a silent data drop is not acceptable to you.

* You have an eye for detail that most engineers skip past, and you take pride in getting it exactly right.

* Your work ethic is that of an athlete preparing for your next marathon. Your sport drives you and you like being in the zone.

* You are NOT a clockwatcher renting out your time, and NOT have an attitude of "I will do only what is asked for"


 

What will you do?

  • Build and maintain financial data ingestion pipelines that pull settlement and transaction data from marketplace platforms (Amazon, Shopee, TikTok, Qoo10, Rakuten) on behalf of large brands operating across multiple Asian markets.
  • Own reconciliation workflows end-to-end — from raw marketplace data to verified, merchant-ready settlement reports — ensuring every figure is correct and every discrepancy is surfaced, not swallowed.
  • Design and implement AI-native features that automate financial analysis: agentic triage of settlement mismatches, root-cause detection across large transaction volumes, and intelligent alerting for ops and merchant teams.
  • Instrument data quality and health monitoring so that silent failures — missing records, schema shifts, delayed ingestion — are caught before they reach the merchant.
  • Build APIs and tooling that enable PortOne's ops and merchant success teams to investigate, verify, and close financial discrepancies faster and with more confidence.
  • Expand platform coverage by integrating new marketplaces and new report types, working closely with data formats that are often inconsistent, undocumented, or changing without notice.
  • Uphold rigorous engineering standards — correctness in financial data is not negotiable, and you treat edge cases and off-by-one errors with the same seriousness as a production incident.
  • Uphold high engineering standards across codebases and processes.
  • Collaborate with product, design, infrastructure, and operations stakeholders.



Skills and Experience

* Have ideally 2 to 4 Years of experience shipping high quality products/live features and workflows

* Strong backend engineering foundation — Go (Preferred), Python, or equivalent; REST/gRPC APIs; database design.

* Understands how to build scalable, resilient, and observable distributed systems.

* Must have built data flows and applications end to end taking full ownership



Preferred Skills and Background

*Prior experience/built apps in golang backend


*Data and data engineering background — comfortable with data pipelines, ETL/ELT patterns, event-driven architectures, reconciliation logic, or analytical workloads.


*AI-native development — you build products where AI is a first-class component, not a bolt-on.


*AI agentic development — experience building or working with agent frameworks, tool-use patterns, LLM orchestration, or automated reasoning pipelines.

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Shubham Vishwakarma

Full Stack Developer - Averlon
I had an amazing experience. It was a delight getting interviewed via Cutshort. The entire end to end process was amazing. I would like to mention Reshika, she was just amazing wrt guiding me through the process. Thank you team.
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