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Senior Project Engineer 1

Houston, TX · On-site

$94K - $123K/yr

Supports Field non-conformance investigations, RCAs, and SN resolution. Consults with other departments on equipment designs and questions. Identifies root cause of problems. Prepares reports ...

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What is a Sn?

Sn engineers, often referred to as Systems and Network engineers, are IT professionals responsible for designing, implementing, managing, and troubleshooting computer networks and systems within an organization. Their work includes ensuring network security, maintaining hardware and software, and optimizing system performance. They play a crucial role in keeping an organization's technology infrastructure reliable and efficient, enabling smooth business operations.

What are some typical challenges someone in a Senior Network Engineer (Sn) role might face, and how can they prepare for them?

Senior Network Engineers often encounter challenges such as managing complex network architectures, troubleshooting advanced connectivity issues, and ensuring network security in a rapidly evolving threat landscape. They may also be responsible for integrating new technologies with legacy systems, which requires careful planning and expertise. To prepare, candidates should stay current with industry certifications, develop strong problem-solving skills, and cultivate effective collaboration with cross-functional teams such as security, operations, and development.

What are the key skills and qualifications needed to thrive as a Senior Network Engineer, and why are they important?

To thrive as a Senior Network Engineer, you need in-depth knowledge of network design, troubleshooting, and security protocols, typically supported by a bachelor’s degree in computer science or a related field. Expertise in tools such as Cisco IOS, Juniper Junos, network monitoring systems, and industry certifications like CCNP or CCIE are highly valued. Strong analytical thinking, communication, and problem-solving skills help you lead teams and manage complex network infrastructures. These skills ensure robust, secure, and efficient networks that support organizational operations and growth.

What is the difference between Sn and Data Analyst?

AspectSnData Analyst
Required CredentialsTypically a degree in computer science, information technology, or related fieldBachelor's degree in statistics, mathematics, or related field
Work EnvironmentIT departments, software companies, tech firmsBusiness, finance, marketing, and healthcare sectors
Employer & Industry UsageUsed in tech and software industries for system managementUsed across various industries for interpreting data and supporting decision-making
Common Search & ComparisonOften compared for technical skills and data handling capabilitiesCompared for analytical skills and business insights

While both Sn and Data Analyst roles involve working with data, Sn typically focuses on system management and technical implementation, whereas Data Analysts concentrate on interpreting data to inform business decisions. The choice depends on your skills and career interests in either technical or analytical domains.

What are popular job titles related to Sn jobs in Texas? For Sn jobs in Texas, the most frequently searched job titles are:
What job categories do people searching Sn jobs in Texas look for? The top searched job categories for Sn jobs in Texas are:
What cities in Texas are hiring for Sn jobs? Cities in Texas with the most Sn job openings:
Infographic showing various Sn job openings in Texas as of July 2026, with employment types broken down into 61% Full Time, 33% Part Time, and 6% Contract. Highlights an 69% Physical, and 31% Remote job distribution.

Postdoctoral Associate - AI for Brain Tumors

Baylor College of Medicine

Houston, TX • On-site

Full-time

Re-posted 13 days ago


Baylor College of Medicine rating

8.0

Company rating: 8.0 out of 10

Based on 24 frontline employees who took The Breakroom Quiz

184th of 615 rated colleges and universities


Job description

Summary

The Postdoctoral Associate will develop next-generation AI models for large-scale perturbation modeling in brain tumors. The project will involve building and applying state-of-the-art machine learning approaches, including foundation models, variational autoencoders (VAEs), and transformer-based architectures, to integrate single-cell and multi-omic datasets. The goal is to decode tumor cellular heterogeneity and tumor microenvironment interactions, and to identify targetable genes, pathways, and therapeutic strategies at single-cell resolution.

Baylor College of Medicine typically follows similar to the NIH stipulated stipend guidelines for Postdoctoral Associates.

Job Duties
  • Develops and implements AI models for perturbation prediction:
    • Designs, trains, and evaluates machine learning models (e.g., transformer-based architectures, VAEs, and foundation models) to predict cellular responses to genetic and pharmacologic perturbations. This includes preprocessing large-scale single-cell and multi-omic datasets, defining model architectures, optimizing training pipelines on GPU clusters, and benchmarking against existing methods.
  • Integrate and analyze large-scale single-cell and multi-omic:
    • Processes and harmonizes scRNA-seq, scATAC-seq, and related datasets across brain tumor cohorts.
    • Performs downstream analyses such as cell state annotation, pathway enrichment, and tumor–tumor microenvironment interaction modeling to generate biologically meaningful insights.
  • Leads computational research projects and method development. 
  • Performs other job-related duties as assigned.
Minimum Qualifications
  • MD or Ph.D. in Basic Science, Health Science, or a related field.
  • No experience required.
Preferred Qualifications
  • Ph.D. in Computational Biology, Bioinformatics, Computer Science  or a related quantitative field.
  • Strong background in machine learning and statistical modeling, with experience in deep learning frameworks (e.g., PyTorch or TensorFlow). Familiarity with modern architectures such as transformers, variational autoencoders (VAEs), and foundation models is highly desirable.
  • Experience in analyzing large-scale genomics or single-cell datasets (e.g., scRNA-seq, scATAC-seq). 
  • Proficiency in Python and experience with R/Seurat or Scanpy.
  • Strong skills in writing efficient, reproducible, and well-documented code.
  • Evidence of productivity through first-author publications or preprints in computational biology, machine learning, or related fields.

Baylor College of Medicine is an Equal Opportunity/Affirmative Action/Equal Access Employer.

PD; SN


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