Software Engineer, Data
Kalshi
| Company | Kalshi |
| Category | Engineering |
| Location | New York |
| Remote | On-site (inferred) |
| Employment | Not stated |
| Level | Not stated |
| Salary | Not stated by the employer |
| Posted | 14 Aug 2024 |
| Last verified | 30 Jul 2026 |
| Source | Employer career page (greenhouse) |
Description
Kalshi is defining a new category
Kalshi has defined a new category: prediction markets. Kalshi allows people to trade on the outcome of any events and turn any question about the future into a financial asset. Kalshi fought for years and legalized prediction markets in the US for the first time in history. Kalshi is currently the fastest growing financial market in America, and has thousands of markets across politics, economics, financials, weather, tech, AI, culture and more.
We believe prediction markets have the potential to be the largest financial market because they turn anything into a financial position.
Our vision: well… build the largest financial market on the planet.
Our mission: bring more truth to the world through the power of markets.
Building a new category is hard… like really hard. But it’s beautiful and deeply fulfilling . Our culture is simple: we hire really talented people, work really hard, and enjoy the climb. We are looking for ambitious and exceptional people to join our (relatively small) team to help us build the next generation of financial markets.
Role Roadmap
As our go to data person at Kalshi, you build and operate the full data stack at Kalshi. This role is one part data engineering, one part data analysis.
Some of the projects you may work on:
Partner closely across the business to find improvements/opportunities and influence decisions using data science methodologies and tools
Drive the collection of new data and the refinement of existing data sources and pipelines
Build actionable KPIs, create production-quality dashboards and notebooks to convey insights
Analyze large, complex datasets to extract insights and decide on the appropriate techniques and data representation
Define and advance best practices within an experiment-driven culture
Inform product engineering roadmap through analysis of marketplace, user behavior, and product trends
Technology:
Our tech stack includes Python, SQL, DBT for data analytics and pipelining, pipelining and machine learning, Spark for big data processing, and visualization through Superset. We leverage cloud platforms such as AWS for scalable data storage and computational needs.
What you’ll do:
Partner with backend engineering teams to design, develop and implement large scale, high volume, high performance data models and pipelines for Data Lake and Data Warehouse
Design and maintain robust ETL processes, focusing on data quality, error handling, and automated monitoring while continuously optimizing performance and resource utilization
Work with product teams to identify gaps in our end-to-end data insights workflow and lead engineering efforts to improve it
Partner with data scientists to implement and optimize feature engineering pipelines, support experimentation workflows, and build scalable infrastructure for model deployment and training data preparation
Build intuitive internal tools and dashboards that enable operations and growth teams to efficiently query and analyze data without requiring deep technical expertise
What we’re looking for:
Bachelor's degree in Computer Science or equivalent professional experience, with 4+ years of hands-on software development
Strong command of key programming languages (Python, Golang, Java)
Proven track record in data pipeline development using modern orchestration tools (Airflow, Flink, Dagster)
Production experience with real-time data streaming platforms like Apache Kafka and Flink
Hands-on expertise with major cloud data warehouses (Snowflake, Redshift) and traditional databases like PostgreSQL
Strong data visualization skills using industry-standard tools (Tableau, Superset, Looker)
Proven track record of taking initiative and thriving in fast-paced environments
Sharp analytical skills with a focus on market dynamics and consumer insights
Passionate about your craft and committed to
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