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Senior Machine Learning Engineer; Search

Job in Houston, Harris County, Texas, 77246, USA
Listing for: Scribd, Inc.
Full Time position
Listed on 2025-12-02
Job specializations:
  • Software Development
    Machine Learning/ ML Engineer, AI Engineer
Salary/Wage Range or Industry Benchmark: 157500 - 230000 USD Yearly USD 157500.00 230000.00 YEAR
Job Description & How to Apply Below
Position: Senior Machine Learning Engineer (Search)

About the Company

At Scribd (pronounced “scribbed”), our mission is to spark human curiosity. Join our team as we create a world of stories and knowledge, democratize the exchange of ideas and information, and empower collective expertise through our four products:
Everand, Scribd, Slideshare, and Fable. We support a culture where employees can be real and bold; where we debate, commit, and embrace plot twists; and where every employee is empowered to take action in pursuit of our customer‑centric goals.

About the Team

The Search team powers personalized discovery across Scribd’s products, delivering relevant and engaging suggestions to millions of users. We operate at the intersection of large‑scale data, cutting‑edge machine learning, and product innovation—collaborating across brands and platforms to enhance user experiences in reading, listening, and learning. Our team blends frontend, backend, and ML engineers who partner closely with product managers, data scientists, and analysts.

About

the Role

We’re looking for a Senior Machine Learning Engineer to lead the design, architecture, and optimization of high‑impact ML discovery features that serve millions of users in near real‑time. You’ll work across the entire lifecycle—from data ingestion to model training, deployment, and monitoring—with a focus on creating fast, reliable, and cost‑efficient pipelines.

  • Lead complex, cross‑team projects from conception to production deployment.
  • Drive technical direction for end‑to‑end, production‑grade ML systems for advanced search capabilities and document understanding.
  • Develop and operate services that power high‑traffic pipelines for content discovery and knowledge synthesis.
  • Run large‑scale A/B and multivariate experiments to validate models and feature improvements.
  • Mentor other engineers and establish best practices for building scalable, reliable ML systems.
Tech Stack
  • Languages:

    Python, Golang, Scala, Ruby on Rails
  • Orchestration & Pipelines:
    Airflow, Databricks, Spark
  • ML & AI: AWS Sage Maker, embedding‑based retrieval (Weaviate), feature store, model registry, model serving platforms (Weights & Biases), LLM providers such as OpenAI, Anthropic, Gemini, etc.
  • APIs & Integration: HTTP APIs, gRPC
  • Infrastructure & Cloud: AWS (Lambda, ECS, EKS, SQS, Elasti Cache, Cloud Watch), Datadog, Terraform
Key Responsibilities
  • Train, evaluate, and deploy ML models (including generative models) to production using Scribd’s internal platform and industry‑standard frameworks.
  • Collaborate with engineering and analytics teams to build large‑scale ingestion, transformation, and validation pipelines on Databricks.
  • Optimize systems for performance, scalability, and reliability across massive datasets and high‑throughput services.
  • Design and run A/B and N‑way experiments to measure the impact of model and feature changes.
  • Partner with product managers, data scientists, and analysts to identify opportunities, define requirements, and deliver solutions that solve real user problems.
Requirements
  • 6+ years of experience as a professional ML engineer or software engineer, with a proven track record of delivering production ML systems at scale.
  • Proficiency in at least one key programming language (preferably Python or Golang; Scala or Ruby also considered).
  • Expertise in designing and architecting large‑scale ML pipelines and distributed systems.
  • Deep experience with distributed data processing frameworks (Spark, Databricks, or similar).
  • Strong cloud expertise (preferably GCP; also AWS and/or Azure) and experience with deployment platforms (ECS, EKS, Lambda).
  • Experience with embedding‑based retrieval, large language models, advanced information retrieval and ranking systems.
  • Experience working with search systems such as query parsing, query intent classification, BM25, reranking, etc.
  • Proven ability to optimize system performance and make informed trade‑offs in ML model and system design.
  • Experience leading technical projects and mentoring engineers.
  • Bachelor’s or Master’s degree in Computer Science or equivalent professional experience.
Salary Range

San Francisco (US): $157,500 – $230,000. Outside California (US): $129,500 – $220,000. Canada:…

Position Requirements
10+ Years work experience
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