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Chalk

data infrastructure

Chalk is a developer-first machine learning infrastructure platform for building, deploying, and monitoring real-time features with Python.

Vedi le 8 posizioni aperteChiedi di Chalk2 nuove posizioni questa settimana

Assume ora

8posizioni aperte−20%rispetto alla settimana scorsa

Chalk sta assumendo?

Sì. Al 9 ottobre 2026, Chalk ha 8 posizioni aperte su Metaintro.

Posizioni aperte

Prima le più recenti. Retribuzione mostrata quando l’annuncio la indica.

Andamento delle assunzioni

Quanto velocemente Chalk apre nuove posizioni e con quale modalità di lavoro.

Nuove posizioni al mesePosizioni pubblicate per la prima volta nel mese

10
2
settembreottobre
ottobre: 2 nuove posizioni.

Modalità di lavoro delle posizioniQuota di posizioni aperte

8%
92%
IbridoIn sede
Il 8% delle posizioni è ibrido o da remoto.

Clienti

Tutte le 15 aziende che Chalk indica come clienti.

Clienti che assumono ora6

Casi di studio6

Altri clienti3

Cosa dicono i loro clienti

Citazioni di persone che lavorano presso i clienti di Chalk.

“Chalk’s performance directly affects the quality of our search and discovery models, which power everything from price flexibility to apartment ranking. The ability to call real-time features without dealing with stream complexity has been huge for us.”

Matt Weale · Software Engineer

“Chalk has transformed our ML development workflow. We can now build and iterate on ML features faster than ever, with a dramatically better developer experience. Chalk also powers real-time feature transformations for our LLM tools and models — critical for meeting the ultra-high freshness standards we require. Beyond the product, the Chalk team has been a great partner: responsive, deeply knowledgeable, and committed to helping us move faster.”

Jay Feng · ML Engineer

“Chalk helps us deliver financial products that are more responsive, more personalized, and more secure for millions of users. It’s a direct line from infrastructure to impact.”

Meng Xin Loh · Technical Product Manager

“We fully replaced our legacy URL candidate suspiciousness scoring model with a more powerful in-house one, shipped in record time! We're optimistic our feature ideation-to-production cycles will only get faster as we 10x our scale this quarter. Huge thanks to the Chalk team for your amazing support—this wouldn’t have happened so quickly without them!”

Justin D'Souza · Machine Learning Engineering

“Chalk Compute was the only integrated compute and context engine for agents that ran entirely inside our own environment, at the scale we needed, without becoming an infrastructure project. What would have taken months took weeks.”

AJ Balance · Chief Product Officer
Mostra altre 25 citazioni

“Chalk has become a powerful addition to our machine learning infrastructure at Mission Lane. Chalk has enabled us to unify and streamline our feature calculations across both offline/batch-eval and online/live-decisioning use cases. We continue to be impressed by the flexibility and scalability of the system, and by the willingness of the Chalk team to work with us to get even more value out of it.”

Mike Kuhlen · Data Science & Machine Learning Solutions and Strategy · Mission Lane

“Chalk is a key component of our underwriting pipeline, increasing velocity across our engineering, risk, and data science teams. Chalk branches let us test new code against production pipelines without disrupting them, enabling us to quickly iterate on new features and enhancements without a PR. This allows us to offer unmatched capital products with more flexibility than other offerings in the market.”

Nate Wiger · CTO

“We’re applying AI and ML at scale across key areas of our energy business with Chalk’s feature platform. It enables high-performance computation over diverse data sources using clean, reusable code. The ability to mix Python and SQL gives our team the flexibility we need, while shared feature logic across projects improves consistency and accelerates development.”

Edward Li · Staff AI/ML Engineer

“We don’t make millions of predictions a second. We make thousands of predictions of high consequence. Chalk underpins that work by giving us reliable, consistent data to power our models.”

Rich Pearce · Engineering Director · iwoca

“Chalk reduced the time it takes to create training sets and improved our confidence in feature consistency. The training data is correct, the features are consistent, and that reliability matters more than anything.”

Rich Pearce · Engineering Director · iwoca

“Instead of relying on stored data to stay in sync, we compute directly from the source. Chalk makes that both precise and reliable.”

Robert Theed · Backend Tech Lead · iwoca

“We no longer maintain an offline store. Chalk computes training datasets directly from the data itself, exactly when we need them.”

Robert Theed · Backend Tech Lead · iwoca

“Our data isn’t large, but every feature has to be precise. A single misaligned timestamp can change a lending decision. Chalk’s feature engine gives us conviction that every feature value is right.”

Robert Theed · Backend Tech Lead · iwoca

“It used to take 24 hours to regenerate a training set. Now it’s under an hour. We can trust every feature in it.”

Robert Theed · Backend Tech Lead · iwoca

“Adopting Chalk is the biggest singular win I have had as an ML engineer at this company.”

Eric Simon · Staff Machine Learning Engineer · Medely

“The first product we ever deployed with Chalk paid for our team, probably more, in net revenue.”

Eric Simon · Staff Machine Learning Engineer · Medely

“The features are just flowing so naturally ... I've never experienced anything like that, including my time at Spotify.”

Eric Simon · Staff Machine Learning Engineer · Medely

“A solution like Chalk is profoundly important to our team because it provided the ability to buy engineering talent. I can rely on the fact that it's self-serve.”

Eric Simon · Staff Machine Learning Engineer · Medely

“As our models get more complex, Chalk gets used more, not less.”

Darryl Vo · Engineering Manager · Turo

“For our high-funnel search workloads, predictability matters.”

Darryl Vo · Engineering Manager · Turo

“Chalk let us turn feature delivery into a self-serve workflow. We stopped waiting on other teams for every new feature and started shipping on our own cadence.”

Darryl Vo · Engineering Manager · Turo

“We had all the pieces of an ML platform, but no single, consistent way to productionize features.”

Darryl Vo · Engineering Manager · Turo

“Search, pricing, and risk all have very different requirements, but they all depend on features being predictable and available in production.”

Darryl Vo · Engineering Manager · Turo

“With Chalk, we can quickly add or remove a feature, test across all models, and then roll out quite quickly. For a team of nine that covers research and engineering for three different product lines, being able to iterate quickly and get improvements out and then move back to our roadmap was like the big shining light.”

Te Riu Warren · CTO · Vital

“We probably write about half or a third of the code that we did with our previous solution — and get twice as much done. It’s a magical developer experience. The code is also much simpler. We’ve had developers from other teams come in and immediately understand stuff, which was 100% not the case before. Do more with less code.”

Mack Delaney · Director of Machine Learning · Vital

“We’re using Chalk to embed AI everywhere—from smart budgeting to fraud to lifecycle engagement. It’s foundational now.”

Meng Xin Loh · Technical Product Manager · MoneyLion

“Now teams contribute to features instead of requesting them. That changes everything.”

Meng Xin Loh · Technical Product Manager · MoneyLion

“Chalk lets DS build in Python and Pandas—which is familiar—and not worry about infrastructure. We can experiment and iterate much faster.”

Jing Chong Beh · Senior Machine Learning Scientist · MoneyLion

“It’s easy to get started on Chalk, and the isolation model keeps everything safe by default. Teams don’t block each other anymore.”

Melvin Low · MLOps Engineer · MoneyLion

“After switching to Chalk’s Query Planner, latency stabilized across peak load days. Even end-of-month Fridays, we stayed within SLA.”

Anya Gurova · Senior Backend Engineer · MoneyLion

Lanci e partner nell’IA

Cosa ha lanciato Chalk e con chi collabora sull’IA.

  • LancioChalk data platformChalk’s data platform provides the building blocks for machine learning.

Competenze richieste

Le più frequenti negli annunci aperti.

Competenze più richieste

  • Python
  • SQL
  • Data infrastructure
  • Communication

Stack tecnologico

Analisi
Google Tag Manager
Google Analytics 4
Librerie
Tailwind CSS
Framework
Next.js
CMS
Sanity

Dati aziendali

Sede centrale
San Francisco, US
Fondata
2022
Settore
data infrastructure
Settore (NAICS)
Informazione
Azienda simile
Delphina
Sito web
chalk.ai
Profili social
LinkedIn · GitHub · X · YouTube · Crunchbase

Posizioni per sede

Dove assume Chalk. Scegli una città per vederne le posizioni.

Aziende simili

Aziende dello stesso settore di Chalk che stanno assumendo ora.

Domande su Chalk

Chalk sta assumendo?
Sì. Al 9 ottobre 2026, Chalk ha 8 posizioni aperte su Metaintro. La maggior parte riguarda Developer (3), Product/Project Management (2) e Tech General (2).
Dove sta assumendo Chalk?
Chalk sta assumendo a Sfax e Hotton, con il maggior numero di posizioni aperte a Sfax.
Chalk offre lavoro da remoto o ibrido?
Il 8% delle posizioni aperte è ibrido e il 0% da remoto.
Chi sono i clienti di Chalk?
Chalk indica 15 clienti, tra cui Socure, Grindr, Melio, Mission Lane e Apartment List.
Quali competenze cerca Chalk?
Le sue posizioni aperte richiedono più spesso Python, SQL, Data infrastructure e Communication.
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