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Senior data/ml engineer

Piraquara
IDT Corporation
Anunciada dia 16 janeiro
Descrição

This is a full-time work from home opportunity for a star Data/ML Engineer from LATAM.

) is an American telecommunications company founded in 1990 and headquartered in New Jersey. Today it is an industry leader in prepaid communication and payment services and one of the world's largest international voice carriers. We are listed on the NYSE, employ over 1300 people across 20+ countries, and have revenues in excess of $1.5 billion.

We are looking for a skilled Data/ML Engineer to join our BI team and take an active role in designing, building, and maintaining the end-to-end data pipeline, architecture and design that powers our warehouse, LLM-driven applications, and AI-based BI. If you're looking for a company that will give you the maximum flexibility in choosing a location to work, this opportunity is for you

Responsibilities:

Design, develop, and maintain scalable data pipelines to support ingestion, transformation, and delivery into centralized feature stores, model-training workflows, and real-time inference services
Build and optimize workflows for extracting, storing, and retrieving semantic representations of unstructured data to enable advanced search and retrieval patterns
Architect and implement lightweight analytics and dashboarding solutions that deliver natural language query experience and AI-backed insights
Define and execute processes for managing prompt engineering techniques, orchestration flows, and model fine-tuning routines to power conversational interfaces
Oversee vector data stores and develop efficient indexing methodologies to support retrieval-augmented generation (RAG) workflows
Partner with data stakeholders to gather requirements for language-model initiatives and translate into scalable solutions
Create and maintain comprehensive documentation for all data processes, workflows and model deployment routines
Should be willing to stay informed and learn emerging methodologies in data engineering, MLOps and LLM operations

Requirements:

8+ years of experience as a Data Engineer with 2+ years focused on MLOps
Excellent English communication skills
Effective oral and written communication skills with BI team and user community
Demonstrated experience in utilizing python for data engineering tasks, including transformation, advanced data manipulation, and large-scale data processing
Deep understanding of vector databases and RAG architectures, and how they drive semantic retrieval workflows
Skilled at integrating open-source LLM frameworks into data engineering workflows for end-to-end model training, customization, and scalable inference.
Experience with cloud platforms like AWS or Azure Machine Learning for managed LLM deployments
Hands-on experience with big data technologies including Apache Spark, Hadoop, and Kafka for distributed processing and real-time data ingestion.
Experience designing complex data pipelines extracting data from RDBMS, JSON, API and Flat file sources
Demonstrated skills in SQL and PLSQL programming, with advanced mastery in Business Intelligence and data warehouse methodologies, along with hands-on experience in one or more relational database systems and cloud-based database services such as Snowflake/Redshift
Understanding of software engineering principles and skills working on Unix/Linux/Windows Operating systems, and experience with Agile methodologies
Proficiency in version control systems, with experience in managing code repositories, branching, merging, and collaborating within a distributed development environment
Interest in business operations and comprehensive understanding of how robust BI systems drive corporate profitability by enabling data-driven decision-making and strategic insights.

Pluses

Experience with vector databases such as DataStax AstraDB, and developing LLM-powered applications using popular open source frameworks like LangChain and LlamaIndex–including prompt engineering, retrieval-augmented generation (RAG), and orchestration of intelligent workflows.
Familiarity with evaluating and integrating open-source LLM frameworks–such as Hugging Face Transformers/LLaMA-4 across end-to-end workflows, including fine-tuning and inference optimization
Knowledge of MLOps tooling and CI/CD pipelines to manage model versioning and automated deployments

Please attach CV in English.

The interview process will be conducted in English.

Only accepting applicants from LATAM.

We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.
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