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Machine Learning Engineer - JT

75% Flex
Remote: 
Full Remote
Experience: 
Mid-level (2-5 years)
Work from: 

Offer summary

Qualifications:

3+ years of ML Engineering experience with MLOps focus, Proficiency in Python, PySpark, SQL; other languages exposure.

Key responsabilities:

  • Design, prototype, build ML systems, pipelines, tools
  • Translate prototypes into scalable production implementations
  • (1 more item) Build reusable pipelines, troubleshoot data tasks
Gorilla Logic logo
Gorilla Logic SME https://www.gorillalogic.com/
501 - 1000 Employees
See more Gorilla Logic offers

Job description

Logo Jobgether

Your missions

Gorilla Logic provides nearshore Agile teams to Fortune 500 and SMB companies, bringing unparalleled expertise in the delivery of full-stack web, mobile, and enterprise applications. Our highly collaborative Agile Gorillas are uniquely qualified to implement complex software initiatives. With offices in the United States, Costa Rica, Colombia and Mexico, Gorilla Logic helps clients gain competitive advantages to achieve results faster.

Machine Learning Engineer

Gorilla Logic is looking for a Machine Learning Engineer, you will be part of a fast paced environment and team that is building a ML Platform on Databricks and using many open source technologies (Python, Spark, Kafka, Delta, Bazel, MLFlow). You will be responsible for building out scalable machine learning infrastructure and pipelines in order to support and operationalize models.

Responsibilities:

*Design, prototype and build machine learning systems, frameworks, pipelines, libraries, utilities and tools that process data for ML tasks
*Translate data science prototypes into scalable production implementations
*Partner with data scientists to troubleshoot and optimize complex data pipelines
*Build ML Platform that can simplify implementing new models
*Build end-to-end reusable pipelines from data acquisition to model output delivery
*Identify opportunities and propose new ways to apply ML to solve challenging technical and data engineering problems and thus improve business results
*Design, develop, deploy, and maintain production-grade scalable data transformation, machine learning, time series models and deep learning code, pipelines, and dashboards; manage data and model versioning, training, tuning, serving, experiment and evaluation tracking implementations
*Perform code reviews to ensure architecture, code, and data standards are followed 

Technical Requirements

*3+ years of solid hands-on Machine Learning Engineering experience with focus on MLOps
*Proven experience in building and deploying machine learning models using Python libraries like MLFlow, MLRun, scikit-learn, PyTorch, MLLib
*Programming Languages – Python (PySpark), SQL; exposure to other languages (Scala, Java, C#, JavaScript).
*Thorough understanding of programming fundamentals such as OOP, data structures, and algorithm design.
*Experience with distributed compute engines (Apache Spark), cloud-based MPP databases (Snowflake, Bigquery, Redshift), and Data Lakes (Azure Data Lake, S3).
*Expertise in building software and systems that scale through a focus on MLOps
*Experience integrating Machine Learning models in production (batch, streaming and
online)
*Fluent in Machine Learning algorithms
*Experience in writing data pipeline and machine learning libraries and utilities
*Industry experience building and productionizing innovative end-to-end Machine
Learning systems

Required profile

Experience

Level of experience: Mid-level (2-5 years)
Spoken language(s):
English
Check out the description to know which languages are mandatory.

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