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META PLATFORMS, INC. (f/k/a Facebook, Inc.) Software Engineer, Machine Learning in Menlo Park, California

Employer:             META PLATFORMS, INC. (f/k/a Facebook, Inc.)

Job Title:               Software Engineer, Machine Learning

Job Code:              REQ-2404-135969

Job Location:        Seattle, Washington

Job Type:              Full-time, 9am -- 6pm, 40 hours a week, Monday -- Friday

Salary:                   $214,365/year to $240,240/year + bonus + equity + benefits.

 

Individual pay is determined by skills, qualifications, experience, and location. Compensation details listed in this posting reflect the base salary only, and do not include bonus or equity or sales incentives, if applicable. In addition to base salary, Meta offers benefits. Learn more about benefits at Meta at this link: https://www.metacareers.com/facebook-life/benefits.

 

Duties:

Research, design, develop, and test operating systems-level software, compilers, and network distribution software for massive social data and prediction problems. Have industry experience working on a range of ranking, classification, recommendation, and optimization problems, such as payment fraud, click-through or conversion rate prediction, click-fraud detection, ads/feed/search ranking, text/sentiment classification, collaborative filtering/recommendation, or spam detection. Working on problems of moderate scope, develop highly scalable systems, algorithms and tools leveraging deep learning, data regression, and rules based models. Suggest, collect, analyze and synthesize requirements and bottlenecks in technology, systems, and tools. Develop solutions that iterate orders of magnitude with a higher efficiency, efficiently leverage orders of magnitude and more data, and explore state-of-the-art deep learning techniques. Receiving general instruction from supervisor, code deliverables in tandem with the engineering team. Adapt standard machine learning methods to best exploit modern parallel environments (such as distributed clusters, multicore SMP, and GPU). Use data driven approaches to identify solutions to problems, prototype machine learning based solutions, perform rigorous analysis and evaluations to study the impact for efficient deployment of models and services. Drive project planning, execution and collaboration with other engineers and partner teams to improve product and system metrics.

 

Requirements:

Requires a Master's degree in Computer Science, Engineering, Applied Sciences, Mathematics, Physics or a related field. Requires completion of a university-level course, research project, internship or thesis in the following: 1. Machine Learning Framework(s): PyTorch, MXNet, or Tensorflow; 2. Machine learning, recommendation systems, computer vision, natural language processing, data mining, or distributed systems; 3. Translating insights into business recommendations; 4. Hadoop, HBase, Pig, MapReduce, Sawzall, Bigtable, or Spark; 5. Developing and debugging in C, C++, and Java; 6. Scripting languages: Perl, Python, PHP, or shell scripts; 7. C, C++, C#, or Java; 8. Python, PHP, or Haskell; 9. Relational databases and SQL; 10. Software development tools: Code editors (VIM or Emacs), and revision control systems (Subversion, GIT, or Perforce); 11. Linux, UNIX, or other *nix-like OS as evidenced by file manipulation, advanced commands, and shell scripting; 12. Build highly-scalable performant solutions; 13. Data processing, programming languages, databases, networking, operating systems, computer graphics, or human-computer interaction; 14. Applying

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