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Senior Applied Data Scientist

About the Role

Abnormal Security is looking for an Applied Data Scientist to join the Message Detection - Attack Detection team.  At Abnormal, we protect our customers against nefarious adversaries who are constantly evolving their techniques and tactics to outwit and undermine the traditional approaches to Security. That’s what makes our novel behavioral-based approach so…Abnormal. Abnormal has constantly been named as one of the top cybersecurity startups and our behavioral AI system has helped us win various cybersecurity accolades resulting in being trusted to protect more than 17% of the Fortune 1000 ( and ever growing ).

In a landscape where a single successful attack can lead to financial losses of millions of dollars, the Attack Detection team plays the central role of building an extremely high recall Detection Engine that can operate on hundreds of millions of messages at milliseconds latency. The Attack Detection team’s mission statement is to provide world-class detector efficacy to tackle changing attack landscape using a combination of generalizable and auto trained models as well as specific detectors for high value attack categories.

This team is solving a multi-layered detection problem, which involves modeling communication patterns to establish enterprise-wide baselines, incorporating these patterns as robust signals, and combining these signals with contextual information to create extremely precise systems. The team builds discriminative signals at various levels including message level (eg. presence of particular phrases), sender-level (eg.frequency of sender) and recipient level (eg.likelihood of receiving a safe message). These signals are then combined and utilized to train highly accurate model based as well as heuristic detectors. Additionally,  to continuously adapt to new unseen attacks, the team builds out different stages in our automated model retraining pipelines including data analytics and generation stages, modeling stages, production evaluation stages as well as automated deployment stages.

This role would also have an opportunity to have a significant impact on the overall charter, direction and roadmap of the team. The Applied Data Scientist would be expected to deeply understand the domain of false negatives i.e. the current and future attacks which can cause significant customer workflow disruption and form a strong understanding of our features to  They would help define the technical roadmap required to address the most pressing customer problems and simultaneously operate our detection decisioning system at an extremely high recall.

What you will do 

  • Deep inspection and row level data analysis of our false negatives and false positives, and produce data and feature insights to iteratively improve our detection efficacy.
  • Understand features that distinguish safe emails from email attacks, and utilize them effectively into our models stack and engine.
  • Train models and develop detectors on well-defined datasets to improve model efficacy on specialized attacks
  • Identify and recommend new features groups or ML model approaches that can significantly improve detection efficacy for a product. Work with infrastructure & systems engineers to productionize  signals to feed into the detection system.
  • Writes code with testability, readability, edge cases, and errors in mind.
  • Actively monitor and improve FN rates and efficacy rates for our message detection product attack categories, through  feature engineering, rules and ML modeling.
  • Contribute in other areas of the stack: building and debugging data pipelines, or presenting results back to customers in our tools when the occasion arises

Must Haves 

  • 5+ years experience designing, building product machine learning applications in one of the domains of text understanding, entity recognition, NLP experience, computer vision, recommendation systems, or search.
  • Experience with data analytics and wielding SQL+ pandas framework to both build metric and evaluation pipelines, and answer critical questions about counterfactual treatments.
  • Ability to understand business requirements thoroughly and bias toward designing a simplest yet generalizable ML model / system that can accomplish the goal.
  • Ability to rapidly iterate on 0-to-1 model prototypes, interpret results, and pivot an approach, in order to evaluate most promising solutions as new problems arise.
  • Uses a systematic approach to debug data issues within both ML and heuristics models.
  • Fluent with Python and machine learning toolkits like numpy, sklearn, pytorch and tensorflow.
  • Effective programming skills which enable them to quickly add incremental logic to our codebase with readable, well tested and efficient code.
  • BS degree in Computer Science, Applied Sciences, Information Systems or other related engineering field

Nice to Have 

  • MS degree in Computer Science, Electrical Engineering or other related engineering/applied Sciences field
  • Experience with algorithms and optimization

This position is not: 

  • A research-oriented role that's two-steps removed from the product or customer

 

#LI-RT1



At Abnormal Security certain roles are eligible for a bonus, restricted stock units (RSUs), and benefits. Individual compensation packages are based on factors unique to each candidate, including their skills, experience, qualifications and other job-related reasons. We know that benefits are also an important piece of your total compensation package. Learn more about our Compensation and Equity Philosophy on our Benefits & Perks page.

Base salary range:
$170,000$200,000 USD

Average salary estimate

$185000 / YEARLY (est.)
min
max
$170000K
$200000K

If an employer mentions a salary or salary range on their job, we display it as an "Employer Estimate". If a job has no salary data, Rise displays an estimate if available.

What You Should Know About Senior Applied Data Scientist , Abnormal

At Abnormal Security, we're seeking an energetic and knowledgeable Senior Applied Data Scientist to join our dynamic Attack Detection team. This is a unique opportunity to play a pivotal role in the fight against sophisticated cyber threats, where your skills in machine learning and data analysis will help protect major companies, including 17% of the Fortune 1000! You’ll dive deep into understanding the nuances of false negatives and positives, conducting thorough data analysis, and enhancing our detection systems. Your mission, should you choose to accept it, involves uncovering the hidden features that distinguish safe emails from potential attacks while leveraging advanced models and signal processing techniques. Here, no two days are the same—you'll work on exciting projects involving real-time message analysis, all while collaborating closely with engineering teams to turn your insights into robust detection mechanisms. Your efforts will directly contribute to our automated model retraining pipelines, ensuring our systems stay ahead of emerging threats. At Abnormal Security, you won’t just be filling a role; you’ll be making waves in the cybersecurity landscape and shaping the technological roadmap that bolsters our innovative behavioral AI approach. If you have over five years of experience in machine learning applications across varied domains and a knack for problem-solving within complex data sets, we’d love to welcome you onboard!

Frequently Asked Questions (FAQs) for Senior Applied Data Scientist Role at Abnormal
What are the primary responsibilities of a Senior Applied Data Scientist at Abnormal Security?

As a Senior Applied Data Scientist at Abnormal Security, your key responsibilities will include conducting in-depth data analysis on false positives and negatives, training machine learning models, and developing effective detectors for specialized attacks. Furthermore, you will identify new feature groups that can enhance our detection systems and collaborate with engineers to productionize these innovations.

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What qualifications are required for the Senior Applied Data Scientist position at Abnormal Security?

Candidates for the Senior Applied Data Scientist role at Abnormal Security should possess a BS degree in Computer Science or a related field, with a minimum of five years crafting machine learning applications. Familiarity with Python, SQL, and data analytics tools is essential. An MS degree and experience with algorithms would be a bonus!

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How does the Senior Applied Data Scientist improve detection efficacy at Abnormal Security?

The Senior Applied Data Scientist improves detection efficacy at Abnormal Security by analyzing communication behavior to build robust models that distinguish between safe and suspicious emails. This includes utilizing data insights for feature engineering and continuously monitoring model performance for optimal results in real-world applications.

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What technical skills are essential for the Senior Applied Data Scientist role at Abnormal Security?

Essential technical skills for a Senior Applied Data Scientist at Abnormal Security include proficiency in Python, experience with machine learning libraries like TensorFlow and PyTorch, and expertise in data analysis using SQL and the Pandas framework. Comfort with model debugging and deployment processes is also crucial.

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What unique approach does Abnormal Security take towards cybersecurity as a Senior Applied Data Scientist?

Abnormal Security employs a novel behavioral-based approach to cybersecurity that centers on understanding evolving attack patterns. In the role of Senior Applied Data Scientist, you'll leverage that approach to build and refine models that enhance our ability to detect and thwart sophisticated email threats.

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Common Interview Questions for Senior Applied Data Scientist
Can you describe your experience with machine learning applications in cybersecurity?

In addressing this question, highlight specific projects where you developed machine learning models pertinent to cybersecurity. Discuss the techniques you employed, the data sets analyzed, and how the outcomes improved detection rates or reduced false positives.

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How do you approach analyzing false negatives and false positives in data sets?

Talk about your systematic approach to identifying patterns within false negatives and positives, including the metrics you prioritize and tools you utilize for data extraction. Present a previous experience where your analysis led to gaining actionable insights.

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What machine learning frameworks and tools are you proficient in?

Provide a brief overview of the machine learning frameworks you're comfortable using, like PyTorch, TensorFlow, or Scikit-learn. Share examples of projects where you implemented these tools effectively, highlighting your coding skills and adaptability.

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How do you prioritize different model features to achieve high efficacy?

Explain your approach to feature selection by discussing how you assess the importance of features in a dataset. Include references to feature engineering methods and how they impact the performance of your models in real-world applications.

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Can you discuss a time when you had to pivot your approach on a machine learning model?

Share a specific instance that involved a significant challenge in your model development process. Explain the initial approach, what failed, and how you adapted your strategy to reach a successful outcome.

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What strategies do you employ to stay up-to-date with evolving cyber threats?

Emphasize your commitment to continuous learning through participating in forums, attending relevant webinars, and keeping abreast of the latest research and attack methodologies. Mention any resources or publications you follow.

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How do you ensure the readability and maintainability of your code?

Discuss your coding habits, focusing on your commitment to writing clear, well-documented code with thorough testing. Talk about tools and practices that help ensure the sustainability of your codebase as the project evolves.

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What role does collaboration play in your approach to data science?

Illustrate the importance of collaboration in your work, mentioning experiences where you engaged with cross-functional teams. Emphasize how collective knowledge leads to better outcomes in data projects and troubleshooting.

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What metrics do you focus on when evaluating a machine learning model?

When answering this question, highlight key metrics such as accuracy, precision, recall, and F1 scores. Explain how you interpret these metrics and their relevance to the specific applications in cybersecurity.

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Why do you want to work at Abnormal Security as a Senior Applied Data Scientist?

Share your enthusiasm for Abnormal Security's innovative approach and commitment to challenging the status quo. Discuss how your skills and passions align with the company's mission to protect clients from evolving threats.

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DATE POSTED
April 16, 2025

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