Why this grade
This listing scored 66/100, which is a C. It lost the most ground on pay transparency.
- Description depth 20 / 20 How much the posting actually says about the work, measured in characters of real text.
- Freshness 15 / 15 How recently it was posted. Older postings are likelier to be filled or abandoned.
- Pay transparency 12 / 25 A published salary range, worth more than any other single factor because it is what a candidate cannot find out without applying.
- Remote clarity 8 / 15 Whether "remote" means anywhere, or is quietly restricted to one country.
- Role specificity 6 / 10 Whether the listing is tagged well enough to tell what the role actually is.
- Corroboration 5 / 10 Whether more than one source carries this listing.
Every figure above is arithmetic over the posting itself — its salary field, its text, its age, its tags and how many sources carry it. How the grades work →
This listing does not state a salary
$126k – $163k
That is the middle half of what comparable roles paid on this board over the last 90 days — 39 listings that did publish a figure, median $140k. It is not this employer's offer, and we have no idea what they pay. It is only what the rest of the market advertised.
Data Science Mid level Full Time
About CYBERA
Scamsdrained$450 billionfrom consumers last year, up 19% in two years, and the number keeps growing as scammer armies use AI at scale. Every bank, insurer, fintech, and crypto exchange is increasingly on the hook to cover losses as new regulations to protect consumers are enacted. Every fraud tool on the market today fails at this usecase, whenvictims legitimately authorize payments. To the bank, transactions look normal,controlsnever fire, and just like that the money is gone.
CYBERA goes upstream to disrupt thescameconomy. Our agenticscamdefense platform engages scammers at scale,turnthem into informants, andcapturethe mule accounts they plan to use before anyone loses money. Banks, insurers, and payment companies use CYBERA to know their bad accounts before money moves in and freeze payments to bad accounts before money heads out. When scammers are successful, CYBERA's agentic response engine traces, freezes, and helps recover funds, dramatically improving consumer outcomes. Leading banks, insurers, and crypto exchanges use CYBERA to cut fraud losses, speed up victim recovery, and turn everyscamattempt into intelligence that protects the next customer.
Every Cyberian is a disruptor, using AI for good to stop financial crime at scale. If taking on this$450 billionproblem sounds like your kind of work,we'dlike to meet you. Learn more at.
Our Values
At CYBERA, how we work matters as much as what we achieve. We Deliver the Outcome by staying curious, thinking things through, and focusing on real customer value. We Do It as a Team through collaboration, empathy, and respectful candor. And we Adapt and Own It, adapting quickly and staying focused when priorities change, as they often do in a growing company.
About the role
- As a Data Engineer, you’ll build and own the data foundation behind CYBERA’s mule intelligence and scam prevention products. You will turn high-volume, messy operational data into fast, reliable, and trusted datasets that our analysts, products, and customers can use with confidence. Working closely with engineering and data analytics, you’ll own the data warehouse and lake, strengthen data quality and performance, and create scalable standards for modelling, lineage, and metric definitions. This is a hands-on role on a small team where you will have significant ownership and the agency to solve problems end to end.
What you'll do
- Own our data warehouse and data lake end to end, from ingestion and storage design through modelling and serving
- Build and operate the pipelines that move data from the CYBERA platform and the systems behind our mule intelligence into the warehouse
- Transform messy operational data into clean, documented datasets that analysts, products, and customer-facing systems can rely on
- Define core business rules and metrics centrally so teams get consistent answers from the same data
- Improve query and platform performance by reviewing execution plans, tuning indexes, and deciding what should be materialized as data volumes grow
- Implement data quality checks, monitoring, and alerting to identify issues before they affect the business or our customers
- Maintain lineage and versioning for data produced by LLM pipelines so changes do not silently alter reported results
- Partner with data analysts on metric definitions, investigate upstream issues, and support reliable dashboards and reporting
- Collaborate with engineers on schema changes, migrations, backfills, and reviews of production data code
Qualifications
- 4 to 6 years of hands-on data engineering experience, including building or substantially evolving a data warehouse or data lake
- Expert SQL skills and a strong track record of diagnosing and improving slow or complex queries
- Hands-on experience with PostgreSQL, SQL Server, or both
- Deep practical experience with performance tuning, execution plans, indexing, and resolving production slowdowns
- Strong data-modelling fundamentals, including experience designing reliable incremental loads
- Working knowledge of orchestration, transformation, monitoring, and data-testing practices
- Experience applying Git, code review, and continuous integration practices to data code
- A high-ownership mindset and the ability to identify, investigate, and resolve problems in a fast-moving environment
It’s a plus if you have
- Administrative experience with Metabase or another business intelligence platform
- Experience working with LLM or machine-learning data pipelines
- Experience with fraud, fintech, cybersecurity, or other adversarial data
Originally posted on Himalayas
Apply for this role Opens himalayas.app — the link as listed; we have not yet verified it is the employer's own page
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Where this listing came from
- 07 Oct 2026 Himalayas first sighting
Seen on 1 board over 0 days.