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How Airflow and AI Power Investigative Journalism at the Financial Times with Zdravko Hvarlingov
Manage episode 516675000 series 2948506
The Financial Times leverages Airflow and AI to uncover powerful stories hidden within vast, unstructured data.
In this episode, Zdravko Hvarlingov, Senior Software Engineer at the Financial Times, discusses building multi-tenant Airflow systems and AI-driven pipelines that surface stories that might otherwise be missed. Zdravko walks through entity extraction and fuzzy matching, linking the UK Register of Members’ Financial Interests with Companies House, and how this work cuts weeks of manual analysis to minutes.
Key Takeaways:
00:00 Introduction.
02:12 What computational journalism means for day-to-day newsroom work.
05:22 Why a shared orchestration platform supports consistent, scalable workflows.
08:30 Tradeoffs of one centralized platform versus many separate instances.
11:52 Using pipelines to structure messy sources for faster analysis.
14:14 Turning recurring disclosures into usable data for investigations.
16:03 Applying lightweight ML and matching to reveal entities and links.
18:46 How automation reduces manual effort and shortens time to insight.
20:41 Practical improvements that make backfilling and reliability easier.
Resources Mentioned:
https://www.linkedin.com/in/zdravko-hvarlingov-3aa36016b/
Financial Times | LinkedIn
https://www.linkedin.com/company/financial-times/
Financial Times | Website
https://www.ft.com/
https://airflow.apache.org/
UK Register of Members’ Financial Interests
https://www.parliament.uk/mps-lords-and-offices/standards-and-financial-interests/parliamentary-commissioner-for-standards/registers-of-interests/register-of-members-financial-interests/
https://www.gov.uk/government/organisations/companies-house
https://www.doppler.com/
https://kubernetes.io/
https://airflow.apache.org/docs/apache-airflow/stable/executor/kubernetes.html
https://github.com/
Thanks for listening to “The Data Flowcast: Mastering Apache Airflow® for Data Engineering and AI.” If you enjoyed this episode, please leave a 5-star review to help get the word out about the show. And be sure to subscribe so you never miss any of the insightful conversations.
#AI #Automation #Airflow #MachineLearning
82 episode
How Airflow and AI Power Investigative Journalism at the Financial Times with Zdravko Hvarlingov
The Data Flowcast: Mastering Apache Airflow ® for Data Engineering and AI
Manage episode 516675000 series 2948506
The Financial Times leverages Airflow and AI to uncover powerful stories hidden within vast, unstructured data.
In this episode, Zdravko Hvarlingov, Senior Software Engineer at the Financial Times, discusses building multi-tenant Airflow systems and AI-driven pipelines that surface stories that might otherwise be missed. Zdravko walks through entity extraction and fuzzy matching, linking the UK Register of Members’ Financial Interests with Companies House, and how this work cuts weeks of manual analysis to minutes.
Key Takeaways:
00:00 Introduction.
02:12 What computational journalism means for day-to-day newsroom work.
05:22 Why a shared orchestration platform supports consistent, scalable workflows.
08:30 Tradeoffs of one centralized platform versus many separate instances.
11:52 Using pipelines to structure messy sources for faster analysis.
14:14 Turning recurring disclosures into usable data for investigations.
16:03 Applying lightweight ML and matching to reveal entities and links.
18:46 How automation reduces manual effort and shortens time to insight.
20:41 Practical improvements that make backfilling and reliability easier.
Resources Mentioned:
https://www.linkedin.com/in/zdravko-hvarlingov-3aa36016b/
Financial Times | LinkedIn
https://www.linkedin.com/company/financial-times/
Financial Times | Website
https://www.ft.com/
https://airflow.apache.org/
UK Register of Members’ Financial Interests
https://www.parliament.uk/mps-lords-and-offices/standards-and-financial-interests/parliamentary-commissioner-for-standards/registers-of-interests/register-of-members-financial-interests/
https://www.gov.uk/government/organisations/companies-house
https://www.doppler.com/
https://kubernetes.io/
https://airflow.apache.org/docs/apache-airflow/stable/executor/kubernetes.html
https://github.com/
Thanks for listening to “The Data Flowcast: Mastering Apache Airflow® for Data Engineering and AI.” If you enjoyed this episode, please leave a 5-star review to help get the word out about the show. And be sure to subscribe so you never miss any of the insightful conversations.
#AI #Automation #Airflow #MachineLearning
82 episode
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